1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Generic hugetlb support. 4 * (C) Nadia Yvette Chambers, April 2004 5 */ 6 #include <linux/list.h> 7 #include <linux/init.h> 8 #include <linux/mm.h> 9 #include <linux/seq_file.h> 10 #include <linux/highmem.h> 11 #include <linux/mmu_notifier.h> 12 #include <linux/nodemask.h> 13 #include <linux/pagemap.h> 14 #include <linux/mempolicy.h> 15 #include <linux/compiler.h> 16 #include <linux/cpumask.h> 17 #include <linux/cpuset.h> 18 #include <linux/mutex.h> 19 #include <linux/memblock.h> 20 #include <linux/minmax.h> 21 #include <linux/slab.h> 22 #include <linux/sched/mm.h> 23 #include <linux/mmdebug.h> 24 #include <linux/sched/signal.h> 25 #include <linux/rmap.h> 26 #include <linux/string_choices.h> 27 #include <linux/string_helpers.h> 28 #include <linux/swap.h> 29 #include <linux/leafops.h> 30 #include <linux/jhash.h> 31 #include <linux/numa.h> 32 #include <linux/llist.h> 33 #include <linux/cma.h> 34 #include <linux/migrate.h> 35 #include <linux/nospec.h> 36 #include <linux/delayacct.h> 37 #include <linux/memory.h> 38 #include <linux/mm_inline.h> 39 #include <linux/padata.h> 40 #include <linux/pgalloc.h> 41 42 #include <asm/page.h> 43 #include <asm/tlb.h> 44 #include <asm/setup.h> 45 46 #include <linux/io.h> 47 #include <linux/node.h> 48 #include <linux/page_owner.h> 49 #include "internal.h" 50 #include "hugetlb_vmemmap.h" 51 #include "hugetlb_cma.h" 52 #include "hugetlb_internal.h" 53 #include <linux/page-isolation.h> 54 55 int hugetlb_max_hstate __read_mostly; 56 unsigned int default_hstate_idx; 57 struct hstate hstates[HUGE_MAX_HSTATE]; 58 59 __initdata nodemask_t hugetlb_bootmem_nodes; 60 __initdata struct list_head huge_boot_pages[MAX_NUMNODES]; 61 static unsigned long hstate_boot_nrinvalid[HUGE_MAX_HSTATE] __initdata; 62 63 /* 64 * Due to ordering constraints across the init code for various 65 * architectures, hugetlb hstate cmdline parameters can't simply 66 * be early_param. early_param might call the setup function 67 * before valid hugetlb page sizes are determined, leading to 68 * incorrect rejection of valid hugepagesz= options. 69 * 70 * So, record the parameters early and consume them whenever the 71 * init code is ready for them, by calling hugetlb_parse_params(). 72 */ 73 74 /* one (hugepagesz=,hugepages=) pair per hstate, one default_hugepagesz */ 75 #define HUGE_MAX_CMDLINE_ARGS (2 * HUGE_MAX_HSTATE + 1) 76 struct hugetlb_cmdline { 77 char *val; 78 int (*setup)(char *val); 79 }; 80 81 /* for command line parsing */ 82 static struct hstate * __initdata parsed_hstate; 83 static unsigned long __initdata default_hstate_max_huge_pages; 84 static bool __initdata parsed_valid_hugepagesz = true; 85 static bool __initdata parsed_default_hugepagesz; 86 static unsigned int default_hugepages_in_node[MAX_NUMNODES] __initdata; 87 static unsigned long hugepage_allocation_threads __initdata; 88 89 static char hstate_cmdline_buf[COMMAND_LINE_SIZE] __initdata; 90 static int hstate_cmdline_index __initdata; 91 static struct hugetlb_cmdline hugetlb_params[HUGE_MAX_CMDLINE_ARGS] __initdata; 92 static int hugetlb_param_index __initdata; 93 static __init int hugetlb_add_param(char *s, int (*setup)(char *val)); 94 static __init void hugetlb_parse_params(void); 95 96 #define hugetlb_early_param(str, func) \ 97 static __init int func##args(char *s) \ 98 { \ 99 return hugetlb_add_param(s, func); \ 100 } \ 101 early_param(str, func##args) 102 103 /* 104 * Protects updates to hugepage_freelists, hugepage_activelist, nr_huge_pages, 105 * free_huge_pages, and surplus_huge_pages. 106 */ 107 __cacheline_aligned_in_smp DEFINE_SPINLOCK(hugetlb_lock); 108 109 /* 110 * Serializes faults on the same logical page. This is used to 111 * prevent spurious OOMs when the hugepage pool is fully utilized. 112 */ 113 static int num_fault_mutexes __ro_after_init; 114 struct mutex *hugetlb_fault_mutex_table __ro_after_init; 115 116 /* Forward declaration */ 117 static int hugetlb_acct_memory(struct hstate *h, long delta); 118 static void hugetlb_vma_lock_free(struct vm_area_struct *vma); 119 static void hugetlb_vma_lock_alloc(struct vm_area_struct *vma); 120 static void __hugetlb_vma_unlock_write_free(struct vm_area_struct *vma); 121 static int __huge_pmd_unshare(struct mmu_gather *tlb, 122 struct vm_area_struct *vma, unsigned long addr, pte_t *ptep, 123 bool check_locks); 124 static void hugetlb_unshare_pmds(struct vm_area_struct *vma, 125 unsigned long start, unsigned long end, bool take_locks); 126 static struct resv_map *vma_resv_map(struct vm_area_struct *vma); 127 128 static inline bool subpool_is_free(struct hugepage_subpool *spool) 129 { 130 if (spool->count) 131 return false; 132 if (spool->max_hpages != -1) 133 return spool->used_hpages == 0; 134 if (spool->min_hpages != -1) 135 return spool->rsv_hpages == spool->min_hpages; 136 137 return true; 138 } 139 140 static inline void unlock_or_release_subpool(struct hugepage_subpool *spool, 141 unsigned long irq_flags) 142 { 143 spin_unlock_irqrestore(&spool->lock, irq_flags); 144 145 /* If no pages are used, and no other handles to the subpool 146 * remain, give up any reservations based on minimum size and 147 * free the subpool */ 148 if (subpool_is_free(spool)) { 149 if (spool->min_hpages != -1) 150 hugetlb_acct_memory(spool->hstate, 151 -spool->min_hpages); 152 kfree(spool); 153 } 154 } 155 156 struct hugepage_subpool *hugepage_new_subpool(struct hstate *h, long max_hpages, 157 long min_hpages) 158 { 159 struct hugepage_subpool *spool; 160 161 spool = kzalloc_obj(*spool); 162 if (!spool) 163 return NULL; 164 165 spin_lock_init(&spool->lock); 166 spool->count = 1; 167 spool->max_hpages = max_hpages; 168 spool->hstate = h; 169 spool->min_hpages = min_hpages; 170 171 if (min_hpages != -1 && hugetlb_acct_memory(h, min_hpages)) { 172 kfree(spool); 173 return NULL; 174 } 175 spool->rsv_hpages = min_hpages; 176 177 return spool; 178 } 179 180 void hugepage_put_subpool(struct hugepage_subpool *spool) 181 { 182 unsigned long flags; 183 184 spin_lock_irqsave(&spool->lock, flags); 185 BUG_ON(!spool->count); 186 spool->count--; 187 unlock_or_release_subpool(spool, flags); 188 } 189 190 /* 191 * Subpool accounting for allocating and reserving pages. 192 * Return -ENOMEM if there are not enough resources to satisfy the 193 * request. Otherwise, return the number of pages by which the 194 * global pools must be adjusted (upward). The returned value may 195 * only be different than the passed value (delta) in the case where 196 * a subpool minimum size must be maintained. 197 */ 198 static long hugepage_subpool_get_pages(struct hugepage_subpool *spool, 199 long delta) 200 { 201 long ret = delta; 202 203 if (!spool) 204 return ret; 205 206 spin_lock_irq(&spool->lock); 207 208 if (spool->max_hpages != -1) { /* maximum size accounting */ 209 if ((spool->used_hpages + delta) <= spool->max_hpages) 210 spool->used_hpages += delta; 211 else { 212 ret = -ENOMEM; 213 goto unlock_ret; 214 } 215 } 216 217 /* minimum size accounting */ 218 if (spool->min_hpages != -1 && spool->rsv_hpages) { 219 if (delta > spool->rsv_hpages) { 220 /* 221 * Asking for more reserves than those already taken on 222 * behalf of subpool. Return difference. 223 */ 224 ret = delta - spool->rsv_hpages; 225 spool->rsv_hpages = 0; 226 } else { 227 ret = 0; /* reserves already accounted for */ 228 spool->rsv_hpages -= delta; 229 } 230 } 231 232 unlock_ret: 233 spin_unlock_irq(&spool->lock); 234 return ret; 235 } 236 237 /* 238 * Subpool accounting for freeing and unreserving pages. 239 * Return the number of global page reservations that must be dropped. 240 * The return value may only be different than the passed value (delta) 241 * in the case where a subpool minimum size must be maintained. 242 */ 243 static long hugepage_subpool_put_pages(struct hugepage_subpool *spool, 244 long delta) 245 { 246 long ret = delta; 247 unsigned long flags; 248 249 if (!spool) 250 return delta; 251 252 spin_lock_irqsave(&spool->lock, flags); 253 254 if (spool->max_hpages != -1) /* maximum size accounting */ 255 spool->used_hpages -= delta; 256 257 /* minimum size accounting */ 258 if (spool->min_hpages != -1 && spool->used_hpages < spool->min_hpages) { 259 if (spool->rsv_hpages + delta <= spool->min_hpages) 260 ret = 0; 261 else 262 ret = spool->rsv_hpages + delta - spool->min_hpages; 263 264 spool->rsv_hpages += delta; 265 if (spool->rsv_hpages > spool->min_hpages) 266 spool->rsv_hpages = spool->min_hpages; 267 } 268 269 /* 270 * If hugetlbfs_put_super couldn't free spool due to an outstanding 271 * quota reference, free it now. 272 */ 273 unlock_or_release_subpool(spool, flags); 274 275 return ret; 276 } 277 278 static inline struct hugepage_subpool *subpool_vma(struct vm_area_struct *vma) 279 { 280 return subpool_inode(file_inode(vma->vm_file)); 281 } 282 283 /* 284 * hugetlb vma_lock helper routines 285 */ 286 void hugetlb_vma_lock_read(struct vm_area_struct *vma) 287 { 288 if (__vma_shareable_lock(vma)) { 289 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 290 291 down_read(&vma_lock->rw_sema); 292 } else if (__vma_private_lock(vma)) { 293 struct resv_map *resv_map = vma_resv_map(vma); 294 295 down_read(&resv_map->rw_sema); 296 } 297 } 298 299 void hugetlb_vma_unlock_read(struct vm_area_struct *vma) 300 { 301 if (__vma_shareable_lock(vma)) { 302 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 303 304 up_read(&vma_lock->rw_sema); 305 } else if (__vma_private_lock(vma)) { 306 struct resv_map *resv_map = vma_resv_map(vma); 307 308 up_read(&resv_map->rw_sema); 309 } 310 } 311 312 void hugetlb_vma_lock_write(struct vm_area_struct *vma) 313 { 314 if (__vma_shareable_lock(vma)) { 315 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 316 317 down_write(&vma_lock->rw_sema); 318 } else if (__vma_private_lock(vma)) { 319 struct resv_map *resv_map = vma_resv_map(vma); 320 321 down_write(&resv_map->rw_sema); 322 } 323 } 324 325 void hugetlb_vma_unlock_write(struct vm_area_struct *vma) 326 { 327 if (__vma_shareable_lock(vma)) { 328 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 329 330 up_write(&vma_lock->rw_sema); 331 } else if (__vma_private_lock(vma)) { 332 struct resv_map *resv_map = vma_resv_map(vma); 333 334 up_write(&resv_map->rw_sema); 335 } 336 } 337 338 int hugetlb_vma_trylock_write(struct vm_area_struct *vma) 339 { 340 341 if (__vma_shareable_lock(vma)) { 342 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 343 344 return down_write_trylock(&vma_lock->rw_sema); 345 } else if (__vma_private_lock(vma)) { 346 struct resv_map *resv_map = vma_resv_map(vma); 347 348 return down_write_trylock(&resv_map->rw_sema); 349 } 350 351 return 1; 352 } 353 354 void hugetlb_vma_assert_locked(struct vm_area_struct *vma) 355 { 356 if (__vma_shareable_lock(vma)) { 357 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 358 359 lockdep_assert_held(&vma_lock->rw_sema); 360 } else if (__vma_private_lock(vma)) { 361 struct resv_map *resv_map = vma_resv_map(vma); 362 363 lockdep_assert_held(&resv_map->rw_sema); 364 } 365 } 366 367 void hugetlb_vma_lock_release(struct kref *kref) 368 { 369 struct hugetlb_vma_lock *vma_lock = container_of(kref, 370 struct hugetlb_vma_lock, refs); 371 372 kfree(vma_lock); 373 } 374 375 static void __hugetlb_vma_unlock_write_put(struct hugetlb_vma_lock *vma_lock) 376 { 377 struct vm_area_struct *vma = vma_lock->vma; 378 379 /* 380 * vma_lock structure may or not be released as a result of put, 381 * it certainly will no longer be attached to vma so clear pointer. 382 * Semaphore synchronizes access to vma_lock->vma field. 383 */ 384 vma_lock->vma = NULL; 385 vma->vm_private_data = NULL; 386 up_write(&vma_lock->rw_sema); 387 kref_put(&vma_lock->refs, hugetlb_vma_lock_release); 388 } 389 390 static void __hugetlb_vma_unlock_write_free(struct vm_area_struct *vma) 391 { 392 if (__vma_shareable_lock(vma)) { 393 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 394 395 __hugetlb_vma_unlock_write_put(vma_lock); 396 } else if (__vma_private_lock(vma)) { 397 struct resv_map *resv_map = vma_resv_map(vma); 398 399 /* no free for anon vmas, but still need to unlock */ 400 up_write(&resv_map->rw_sema); 401 } 402 } 403 404 static void hugetlb_vma_lock_free(struct vm_area_struct *vma) 405 { 406 /* 407 * Only present in sharable vmas. 408 */ 409 if (!vma || !__vma_shareable_lock(vma)) 410 return; 411 412 if (vma->vm_private_data) { 413 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 414 415 down_write(&vma_lock->rw_sema); 416 __hugetlb_vma_unlock_write_put(vma_lock); 417 } 418 } 419 420 static void hugetlb_vma_lock_alloc(struct vm_area_struct *vma) 421 { 422 struct hugetlb_vma_lock *vma_lock; 423 424 /* Only establish in (flags) sharable vmas */ 425 if (!vma || !(vma->vm_flags & VM_MAYSHARE)) 426 return; 427 428 /* Should never get here with non-NULL vm_private_data */ 429 if (vma->vm_private_data) 430 return; 431 432 vma_lock = kmalloc_obj(*vma_lock); 433 if (!vma_lock) { 434 /* 435 * If we can not allocate structure, then vma can not 436 * participate in pmd sharing. This is only a possible 437 * performance enhancement and memory saving issue. 438 * However, the lock is also used to synchronize page 439 * faults with truncation. If the lock is not present, 440 * unlikely races could leave pages in a file past i_size 441 * until the file is removed. Warn in the unlikely case of 442 * allocation failure. 443 */ 444 pr_warn_once("HugeTLB: unable to allocate vma specific lock\n"); 445 return; 446 } 447 448 kref_init(&vma_lock->refs); 449 init_rwsem(&vma_lock->rw_sema); 450 vma_lock->vma = vma; 451 vma->vm_private_data = vma_lock; 452 } 453 454 /* Helper that removes a struct file_region from the resv_map cache and returns 455 * it for use. 456 */ 457 static struct file_region * 458 get_file_region_entry_from_cache(struct resv_map *resv, long from, long to) 459 { 460 struct file_region *nrg; 461 462 VM_BUG_ON(resv->region_cache_count <= 0); 463 464 resv->region_cache_count--; 465 nrg = list_first_entry(&resv->region_cache, struct file_region, link); 466 list_del(&nrg->link); 467 468 nrg->from = from; 469 nrg->to = to; 470 471 return nrg; 472 } 473 474 static void copy_hugetlb_cgroup_uncharge_info(struct file_region *nrg, 475 struct file_region *rg) 476 { 477 #ifdef CONFIG_CGROUP_HUGETLB 478 nrg->reservation_counter = rg->reservation_counter; 479 nrg->css = rg->css; 480 if (rg->css) 481 css_get(rg->css); 482 #endif 483 } 484 485 /* Helper that records hugetlb_cgroup uncharge info. */ 486 static void record_hugetlb_cgroup_uncharge_info(struct hugetlb_cgroup *h_cg, 487 struct hstate *h, 488 struct resv_map *resv, 489 struct file_region *nrg) 490 { 491 #ifdef CONFIG_CGROUP_HUGETLB 492 if (h_cg) { 493 nrg->reservation_counter = 494 &h_cg->rsvd_hugepage[hstate_index(h)]; 495 nrg->css = &h_cg->css; 496 /* 497 * The caller will hold exactly one h_cg->css reference for the 498 * whole contiguous reservation region. But this area might be 499 * scattered when there are already some file_regions reside in 500 * it. As a result, many file_regions may share only one css 501 * reference. In order to ensure that one file_region must hold 502 * exactly one h_cg->css reference, we should do css_get for 503 * each file_region and leave the reference held by caller 504 * untouched. 505 */ 506 css_get(&h_cg->css); 507 if (!resv->pages_per_hpage) 508 resv->pages_per_hpage = pages_per_huge_page(h); 509 /* pages_per_hpage should be the same for all entries in 510 * a resv_map. 511 */ 512 VM_BUG_ON(resv->pages_per_hpage != pages_per_huge_page(h)); 513 } else { 514 nrg->reservation_counter = NULL; 515 nrg->css = NULL; 516 } 517 #endif 518 } 519 520 static void put_uncharge_info(struct file_region *rg) 521 { 522 #ifdef CONFIG_CGROUP_HUGETLB 523 if (rg->css) 524 css_put(rg->css); 525 #endif 526 } 527 528 static bool has_same_uncharge_info(struct file_region *rg, 529 struct file_region *org) 530 { 531 #ifdef CONFIG_CGROUP_HUGETLB 532 return rg->reservation_counter == org->reservation_counter && 533 rg->css == org->css; 534 535 #else 536 return true; 537 #endif 538 } 539 540 static void coalesce_file_region(struct resv_map *resv, struct file_region *rg) 541 { 542 struct file_region *nrg, *prg; 543 544 prg = list_prev_entry(rg, link); 545 if (&prg->link != &resv->regions && prg->to == rg->from && 546 has_same_uncharge_info(prg, rg)) { 547 prg->to = rg->to; 548 549 list_del(&rg->link); 550 put_uncharge_info(rg); 551 kfree(rg); 552 553 rg = prg; 554 } 555 556 nrg = list_next_entry(rg, link); 557 if (&nrg->link != &resv->regions && nrg->from == rg->to && 558 has_same_uncharge_info(nrg, rg)) { 559 nrg->from = rg->from; 560 561 list_del(&rg->link); 562 put_uncharge_info(rg); 563 kfree(rg); 564 } 565 } 566 567 static inline long 568 hugetlb_resv_map_add(struct resv_map *map, struct list_head *rg, long from, 569 long to, struct hstate *h, struct hugetlb_cgroup *cg, 570 long *regions_needed) 571 { 572 struct file_region *nrg; 573 574 if (!regions_needed) { 575 nrg = get_file_region_entry_from_cache(map, from, to); 576 record_hugetlb_cgroup_uncharge_info(cg, h, map, nrg); 577 list_add(&nrg->link, rg); 578 coalesce_file_region(map, nrg); 579 } else { 580 *regions_needed += 1; 581 } 582 583 return to - from; 584 } 585 586 /* 587 * Must be called with resv->lock held. 588 * 589 * Calling this with regions_needed != NULL will count the number of pages 590 * to be added but will not modify the linked list. And regions_needed will 591 * indicate the number of file_regions needed in the cache to carry out to add 592 * the regions for this range. 593 */ 594 static long add_reservation_in_range(struct resv_map *resv, long f, long t, 595 struct hugetlb_cgroup *h_cg, 596 struct hstate *h, long *regions_needed) 597 { 598 long add = 0; 599 struct list_head *head = &resv->regions; 600 long last_accounted_offset = f; 601 struct file_region *iter, *trg = NULL; 602 struct list_head *rg = NULL; 603 604 if (regions_needed) 605 *regions_needed = 0; 606 607 /* In this loop, we essentially handle an entry for the range 608 * [last_accounted_offset, iter->from), at every iteration, with some 609 * bounds checking. 610 */ 611 list_for_each_entry_safe(iter, trg, head, link) { 612 /* Skip irrelevant regions that start before our range. */ 613 if (iter->from < f) { 614 /* If this region ends after the last accounted offset, 615 * then we need to update last_accounted_offset. 616 */ 617 if (iter->to > last_accounted_offset) 618 last_accounted_offset = iter->to; 619 continue; 620 } 621 622 /* When we find a region that starts beyond our range, we've 623 * finished. 624 */ 625 if (iter->from >= t) { 626 rg = iter->link.prev; 627 break; 628 } 629 630 /* Add an entry for last_accounted_offset -> iter->from, and 631 * update last_accounted_offset. 632 */ 633 if (iter->from > last_accounted_offset) 634 add += hugetlb_resv_map_add(resv, iter->link.prev, 635 last_accounted_offset, 636 iter->from, h, h_cg, 637 regions_needed); 638 639 last_accounted_offset = iter->to; 640 } 641 642 /* Handle the case where our range extends beyond 643 * last_accounted_offset. 644 */ 645 if (!rg) 646 rg = head->prev; 647 if (last_accounted_offset < t) 648 add += hugetlb_resv_map_add(resv, rg, last_accounted_offset, 649 t, h, h_cg, regions_needed); 650 651 return add; 652 } 653 654 /* Must be called with resv->lock acquired. Will drop lock to allocate entries. 655 */ 656 static int allocate_file_region_entries(struct resv_map *resv, 657 int regions_needed) 658 __must_hold(&resv->lock) 659 { 660 LIST_HEAD(allocated_regions); 661 int to_allocate = 0, i = 0; 662 struct file_region *trg = NULL, *rg = NULL; 663 664 VM_BUG_ON(regions_needed < 0); 665 666 /* 667 * Check for sufficient descriptors in the cache to accommodate 668 * the number of in progress add operations plus regions_needed. 669 * 670 * This is a while loop because when we drop the lock, some other call 671 * to region_add or region_del may have consumed some region_entries, 672 * so we keep looping here until we finally have enough entries for 673 * (adds_in_progress + regions_needed). 674 */ 675 while (resv->region_cache_count < 676 (resv->adds_in_progress + regions_needed)) { 677 to_allocate = resv->adds_in_progress + regions_needed - 678 resv->region_cache_count; 679 680 /* At this point, we should have enough entries in the cache 681 * for all the existing adds_in_progress. We should only be 682 * needing to allocate for regions_needed. 683 */ 684 VM_BUG_ON(resv->region_cache_count < resv->adds_in_progress); 685 686 spin_unlock(&resv->lock); 687 for (i = 0; i < to_allocate; i++) { 688 trg = kmalloc_obj(*trg); 689 if (!trg) 690 goto out_of_memory; 691 list_add(&trg->link, &allocated_regions); 692 } 693 694 spin_lock(&resv->lock); 695 696 list_splice(&allocated_regions, &resv->region_cache); 697 resv->region_cache_count += to_allocate; 698 } 699 700 return 0; 701 702 out_of_memory: 703 list_for_each_entry_safe(rg, trg, &allocated_regions, link) { 704 list_del(&rg->link); 705 kfree(rg); 706 } 707 return -ENOMEM; 708 } 709 710 /* 711 * Add the huge page range represented by [f, t) to the reserve 712 * map. Regions will be taken from the cache to fill in this range. 713 * Sufficient regions should exist in the cache due to the previous 714 * call to region_chg with the same range, but in some cases the cache will not 715 * have sufficient entries due to races with other code doing region_add or 716 * region_del. The extra needed entries will be allocated. 717 * 718 * regions_needed is the out value provided by a previous call to region_chg. 719 * 720 * Return the number of new huge pages added to the map. This number is greater 721 * than or equal to zero. If file_region entries needed to be allocated for 722 * this operation and we were not able to allocate, it returns -ENOMEM. 723 * region_add of regions of length 1 never allocate file_regions and cannot 724 * fail; region_chg will always allocate at least 1 entry and a region_add for 725 * 1 page will only require at most 1 entry. 726 */ 727 static long region_add(struct resv_map *resv, long f, long t, 728 long in_regions_needed, struct hstate *h, 729 struct hugetlb_cgroup *h_cg) 730 { 731 long add = 0, actual_regions_needed = 0; 732 733 spin_lock(&resv->lock); 734 retry: 735 736 /* Count how many regions are actually needed to execute this add. */ 737 add_reservation_in_range(resv, f, t, NULL, NULL, 738 &actual_regions_needed); 739 740 /* 741 * Check for sufficient descriptors in the cache to accommodate 742 * this add operation. Note that actual_regions_needed may be greater 743 * than in_regions_needed, as the resv_map may have been modified since 744 * the region_chg call. In this case, we need to make sure that we 745 * allocate extra entries, such that we have enough for all the 746 * existing adds_in_progress, plus the excess needed for this 747 * operation. 748 */ 749 if (actual_regions_needed > in_regions_needed && 750 resv->region_cache_count < 751 resv->adds_in_progress + 752 (actual_regions_needed - in_regions_needed)) { 753 /* region_add operation of range 1 should never need to 754 * allocate file_region entries. 755 */ 756 VM_BUG_ON(t - f <= 1); 757 758 if (allocate_file_region_entries( 759 resv, actual_regions_needed - in_regions_needed)) { 760 return -ENOMEM; 761 } 762 763 goto retry; 764 } 765 766 add = add_reservation_in_range(resv, f, t, h_cg, h, NULL); 767 768 resv->adds_in_progress -= in_regions_needed; 769 770 spin_unlock(&resv->lock); 771 return add; 772 } 773 774 /* 775 * Examine the existing reserve map and determine how many 776 * huge pages in the specified range [f, t) are NOT currently 777 * represented. This routine is called before a subsequent 778 * call to region_add that will actually modify the reserve 779 * map to add the specified range [f, t). region_chg does 780 * not change the number of huge pages represented by the 781 * map. A number of new file_region structures is added to the cache as a 782 * placeholder, for the subsequent region_add call to use. At least 1 783 * file_region structure is added. 784 * 785 * out_regions_needed is the number of regions added to the 786 * resv->adds_in_progress. This value needs to be provided to a follow up call 787 * to region_add or region_abort for proper accounting. 788 * 789 * Returns the number of huge pages that need to be added to the existing 790 * reservation map for the range [f, t). This number is greater or equal to 791 * zero. -ENOMEM is returned if a new file_region structure or cache entry 792 * is needed and can not be allocated. 793 */ 794 static long region_chg(struct resv_map *resv, long f, long t, 795 long *out_regions_needed) 796 { 797 long chg = 0; 798 799 spin_lock(&resv->lock); 800 801 /* Count how many hugepages in this range are NOT represented. */ 802 chg = add_reservation_in_range(resv, f, t, NULL, NULL, 803 out_regions_needed); 804 805 if (*out_regions_needed == 0) 806 *out_regions_needed = 1; 807 808 if (allocate_file_region_entries(resv, *out_regions_needed)) 809 return -ENOMEM; 810 811 resv->adds_in_progress += *out_regions_needed; 812 813 spin_unlock(&resv->lock); 814 return chg; 815 } 816 817 /* 818 * Abort the in progress add operation. The adds_in_progress field 819 * of the resv_map keeps track of the operations in progress between 820 * calls to region_chg and region_add. Operations are sometimes 821 * aborted after the call to region_chg. In such cases, region_abort 822 * is called to decrement the adds_in_progress counter. regions_needed 823 * is the value returned by the region_chg call, it is used to decrement 824 * the adds_in_progress counter. 825 * 826 * NOTE: The range arguments [f, t) are not needed or used in this 827 * routine. They are kept to make reading the calling code easier as 828 * arguments will match the associated region_chg call. 829 */ 830 static void region_abort(struct resv_map *resv, long f, long t, 831 long regions_needed) 832 { 833 spin_lock(&resv->lock); 834 VM_BUG_ON(!resv->region_cache_count); 835 resv->adds_in_progress -= regions_needed; 836 spin_unlock(&resv->lock); 837 } 838 839 /* 840 * Delete the specified range [f, t) from the reserve map. If the 841 * t parameter is LONG_MAX, this indicates that ALL regions after f 842 * should be deleted. Locate the regions which intersect [f, t) 843 * and either trim, delete or split the existing regions. 844 * 845 * Returns the number of huge pages deleted from the reserve map. 846 * In the normal case, the return value is zero or more. In the 847 * case where a region must be split, a new region descriptor must 848 * be allocated. If the allocation fails, -ENOMEM will be returned. 849 * NOTE: If the parameter t == LONG_MAX, then we will never split 850 * a region and possibly return -ENOMEM. Callers specifying 851 * t == LONG_MAX do not need to check for -ENOMEM error. 852 */ 853 static long region_del(struct resv_map *resv, long f, long t) 854 { 855 struct list_head *head = &resv->regions; 856 struct file_region *rg, *trg; 857 struct file_region *nrg = NULL; 858 long del = 0; 859 860 retry: 861 spin_lock(&resv->lock); 862 list_for_each_entry_safe(rg, trg, head, link) { 863 /* 864 * Skip regions before the range to be deleted. file_region 865 * ranges are normally of the form [from, to). However, there 866 * may be a "placeholder" entry in the map which is of the form 867 * (from, to) with from == to. Check for placeholder entries 868 * at the beginning of the range to be deleted. 869 */ 870 if (rg->to <= f && (rg->to != rg->from || rg->to != f)) 871 continue; 872 873 if (rg->from >= t) 874 break; 875 876 if (f > rg->from && t < rg->to) { /* Must split region */ 877 /* 878 * Check for an entry in the cache before dropping 879 * lock and attempting allocation. 880 */ 881 if (!nrg && 882 resv->region_cache_count > resv->adds_in_progress) { 883 nrg = list_first_entry(&resv->region_cache, 884 struct file_region, 885 link); 886 list_del(&nrg->link); 887 resv->region_cache_count--; 888 } 889 890 if (!nrg) { 891 spin_unlock(&resv->lock); 892 nrg = kmalloc_obj(*nrg); 893 if (!nrg) 894 return -ENOMEM; 895 goto retry; 896 } 897 898 del += t - f; 899 hugetlb_cgroup_uncharge_file_region( 900 resv, rg, t - f, false); 901 902 /* New entry for end of split region */ 903 nrg->from = t; 904 nrg->to = rg->to; 905 906 copy_hugetlb_cgroup_uncharge_info(nrg, rg); 907 908 INIT_LIST_HEAD(&nrg->link); 909 910 /* Original entry is trimmed */ 911 rg->to = f; 912 913 list_add(&nrg->link, &rg->link); 914 nrg = NULL; 915 break; 916 } 917 918 if (f <= rg->from && t >= rg->to) { /* Remove entire region */ 919 del += rg->to - rg->from; 920 hugetlb_cgroup_uncharge_file_region(resv, rg, 921 rg->to - rg->from, true); 922 list_del(&rg->link); 923 kfree(rg); 924 continue; 925 } 926 927 if (f <= rg->from) { /* Trim beginning of region */ 928 hugetlb_cgroup_uncharge_file_region(resv, rg, 929 t - rg->from, false); 930 931 del += t - rg->from; 932 rg->from = t; 933 } else { /* Trim end of region */ 934 hugetlb_cgroup_uncharge_file_region(resv, rg, 935 rg->to - f, false); 936 937 del += rg->to - f; 938 rg->to = f; 939 } 940 } 941 942 spin_unlock(&resv->lock); 943 kfree(nrg); 944 return del; 945 } 946 947 /* 948 * A rare out of memory error was encountered which prevented removal of 949 * the reserve map region for a page. The huge page itself was free'ed 950 * and removed from the page cache. This routine will adjust the subpool 951 * usage count, and the global reserve count if needed. By incrementing 952 * these counts, the reserve map entry which could not be deleted will 953 * appear as a "reserved" entry instead of simply dangling with incorrect 954 * counts. 955 */ 956 void hugetlb_fix_reserve_counts(struct inode *inode) 957 { 958 struct hugepage_subpool *spool = subpool_inode(inode); 959 long rsv_adjust; 960 bool reserved = false; 961 962 rsv_adjust = hugepage_subpool_get_pages(spool, 1); 963 if (rsv_adjust > 0) { 964 struct hstate *h = hstate_inode(inode); 965 966 if (!hugetlb_acct_memory(h, 1)) 967 reserved = true; 968 } else if (!rsv_adjust) { 969 reserved = true; 970 } 971 972 if (!reserved) 973 pr_warn("hugetlb: Huge Page Reserved count may go negative.\n"); 974 } 975 976 /* 977 * Count and return the number of huge pages in the reserve map 978 * that intersect with the range [f, t). 979 */ 980 static long region_count(struct resv_map *resv, long f, long t) 981 { 982 struct list_head *head = &resv->regions; 983 struct file_region *rg; 984 long chg = 0; 985 986 spin_lock(&resv->lock); 987 /* Locate each segment we overlap with, and count that overlap. */ 988 list_for_each_entry(rg, head, link) { 989 long seg_from; 990 long seg_to; 991 992 if (rg->to <= f) 993 continue; 994 if (rg->from >= t) 995 break; 996 997 seg_from = max(rg->from, f); 998 seg_to = min(rg->to, t); 999 1000 chg += seg_to - seg_from; 1001 } 1002 spin_unlock(&resv->lock); 1003 1004 return chg; 1005 } 1006 1007 /* 1008 * Convert the address within this vma to the page offset within 1009 * the mapping, huge page units here. 1010 */ 1011 static pgoff_t vma_hugecache_offset(struct hstate *h, 1012 struct vm_area_struct *vma, unsigned long address) 1013 { 1014 return ((address - vma->vm_start) >> huge_page_shift(h)) + 1015 (vma->vm_pgoff >> huge_page_order(h)); 1016 } 1017 1018 /* 1019 * Flags for MAP_PRIVATE reservations. These are stored in the bottom 1020 * bits of the reservation map pointer, which are always clear due to 1021 * alignment. 1022 */ 1023 #define HPAGE_RESV_OWNER (1UL << 0) 1024 #define HPAGE_RESV_UNMAPPED (1UL << 1) 1025 #define HPAGE_RESV_MASK (HPAGE_RESV_OWNER | HPAGE_RESV_UNMAPPED) 1026 1027 /* 1028 * These helpers are used to track how many pages are reserved for 1029 * faults in a MAP_PRIVATE mapping. Only the process that called mmap() 1030 * is guaranteed to have their future faults succeed. 1031 * 1032 * With the exception of hugetlb_dup_vma_private() which is called at fork(), 1033 * the reserve counters are updated with the hugetlb_lock held. It is safe 1034 * to reset the VMA at fork() time as it is not in use yet and there is no 1035 * chance of the global counters getting corrupted as a result of the values. 1036 * 1037 * The private mapping reservation is represented in a subtly different 1038 * manner to a shared mapping. A shared mapping has a region map associated 1039 * with the underlying file, this region map represents the backing file 1040 * pages which have ever had a reservation assigned which this persists even 1041 * after the page is instantiated. A private mapping has a region map 1042 * associated with the original mmap which is attached to all VMAs which 1043 * reference it, this region map represents those offsets which have consumed 1044 * reservation ie. where pages have been instantiated. 1045 */ 1046 static unsigned long get_vma_private_data(struct vm_area_struct *vma) 1047 { 1048 return (unsigned long)vma->vm_private_data; 1049 } 1050 1051 static void set_vma_private_data(struct vm_area_struct *vma, 1052 unsigned long value) 1053 { 1054 vma->vm_private_data = (void *)value; 1055 } 1056 1057 static void 1058 resv_map_set_hugetlb_cgroup_uncharge_info(struct resv_map *resv_map, 1059 struct hugetlb_cgroup *h_cg, 1060 struct hstate *h) 1061 { 1062 #ifdef CONFIG_CGROUP_HUGETLB 1063 if (!h_cg || !h) { 1064 resv_map->reservation_counter = NULL; 1065 resv_map->pages_per_hpage = 0; 1066 resv_map->css = NULL; 1067 } else { 1068 resv_map->reservation_counter = 1069 &h_cg->rsvd_hugepage[hstate_index(h)]; 1070 resv_map->pages_per_hpage = pages_per_huge_page(h); 1071 resv_map->css = &h_cg->css; 1072 } 1073 #endif 1074 } 1075 1076 struct resv_map *resv_map_alloc(void) 1077 { 1078 struct resv_map *resv_map = kmalloc_obj(*resv_map); 1079 struct file_region *rg = kmalloc_obj(*rg); 1080 1081 if (!resv_map || !rg) { 1082 kfree(resv_map); 1083 kfree(rg); 1084 return NULL; 1085 } 1086 1087 kref_init(&resv_map->refs); 1088 spin_lock_init(&resv_map->lock); 1089 INIT_LIST_HEAD(&resv_map->regions); 1090 init_rwsem(&resv_map->rw_sema); 1091 1092 resv_map->adds_in_progress = 0; 1093 /* 1094 * Initialize these to 0. On shared mappings, 0's here indicate these 1095 * fields don't do cgroup accounting. On private mappings, these will be 1096 * re-initialized to the proper values, to indicate that hugetlb cgroup 1097 * reservations are to be un-charged from here. 1098 */ 1099 resv_map_set_hugetlb_cgroup_uncharge_info(resv_map, NULL, NULL); 1100 1101 INIT_LIST_HEAD(&resv_map->region_cache); 1102 list_add(&rg->link, &resv_map->region_cache); 1103 resv_map->region_cache_count = 1; 1104 1105 return resv_map; 1106 } 1107 1108 void resv_map_release(struct kref *ref) 1109 { 1110 struct resv_map *resv_map = container_of(ref, struct resv_map, refs); 1111 struct list_head *head = &resv_map->region_cache; 1112 struct file_region *rg, *trg; 1113 1114 /* Clear out any active regions before we release the map. */ 1115 region_del(resv_map, 0, LONG_MAX); 1116 1117 /* ... and any entries left in the cache */ 1118 list_for_each_entry_safe(rg, trg, head, link) { 1119 list_del(&rg->link); 1120 kfree(rg); 1121 } 1122 1123 VM_BUG_ON(resv_map->adds_in_progress); 1124 1125 kfree(resv_map); 1126 } 1127 1128 static inline struct resv_map *inode_resv_map(struct inode *inode) 1129 { 1130 return HUGETLBFS_I(inode)->resv_map; 1131 } 1132 1133 static struct resv_map *vma_resv_map(struct vm_area_struct *vma) 1134 { 1135 VM_BUG_ON_VMA(!is_vm_hugetlb_page(vma), vma); 1136 if (vma->vm_flags & VM_MAYSHARE) { 1137 struct address_space *mapping = vma->vm_file->f_mapping; 1138 struct inode *inode = mapping->host; 1139 1140 return inode_resv_map(inode); 1141 1142 } else { 1143 return (struct resv_map *)(get_vma_private_data(vma) & 1144 ~HPAGE_RESV_MASK); 1145 } 1146 } 1147 1148 static void set_vma_resv_map(struct vm_area_struct *vma, struct resv_map *map) 1149 { 1150 VM_WARN_ON_ONCE_VMA(!is_vm_hugetlb_page(vma), vma); 1151 VM_WARN_ON_ONCE_VMA(vma_test(vma, VMA_MAYSHARE_BIT), vma); 1152 1153 set_vma_private_data(vma, (unsigned long)map); 1154 } 1155 1156 static void set_vma_resv_flags(struct vm_area_struct *vma, unsigned long flags) 1157 { 1158 VM_WARN_ON_ONCE_VMA(!is_vm_hugetlb_page(vma), vma); 1159 VM_WARN_ON_ONCE_VMA(vma_test(vma, VMA_MAYSHARE_BIT), vma); 1160 1161 set_vma_private_data(vma, get_vma_private_data(vma) | flags); 1162 } 1163 1164 static int is_vma_resv_set(struct vm_area_struct *vma, unsigned long flag) 1165 { 1166 VM_BUG_ON_VMA(!is_vm_hugetlb_page(vma), vma); 1167 1168 return (get_vma_private_data(vma) & flag) != 0; 1169 } 1170 1171 bool __vma_private_lock(struct vm_area_struct *vma) 1172 { 1173 return !(vma->vm_flags & VM_MAYSHARE) && 1174 get_vma_private_data(vma) & ~HPAGE_RESV_MASK && 1175 is_vma_resv_set(vma, HPAGE_RESV_OWNER); 1176 } 1177 1178 void hugetlb_dup_vma_private(struct vm_area_struct *vma) 1179 { 1180 VM_BUG_ON_VMA(!is_vm_hugetlb_page(vma), vma); 1181 /* 1182 * Clear vm_private_data 1183 * - For shared mappings this is a per-vma semaphore that may be 1184 * allocated in a subsequent call to hugetlb_vm_op_open. 1185 * Before clearing, make sure pointer is not associated with vma 1186 * as this will leak the structure. This is the case when called 1187 * via clear_vma_resv_huge_pages() and hugetlb_vm_op_open has already 1188 * been called to allocate a new structure. 1189 * - For MAP_PRIVATE mappings, this is the reserve map which does 1190 * not apply to children. Faults generated by the children are 1191 * not guaranteed to succeed, even if read-only. 1192 */ 1193 if (vma->vm_flags & VM_MAYSHARE) { 1194 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 1195 1196 if (vma_lock && vma_lock->vma != vma) 1197 vma->vm_private_data = NULL; 1198 } else { 1199 vma->vm_private_data = NULL; 1200 } 1201 } 1202 1203 /* 1204 * Reset and decrement one ref on hugepage private reservation. 1205 * Called with mm->mmap_lock writer semaphore held. 1206 * This function should be only used by mremap and operate on 1207 * same sized vma. It should never come here with last ref on the 1208 * reservation. 1209 */ 1210 void clear_vma_resv_huge_pages(struct vm_area_struct *vma) 1211 { 1212 /* 1213 * Clear the old hugetlb private page reservation. 1214 * It has already been transferred to new_vma. 1215 * 1216 * During a mremap() operation of a hugetlb vma we call move_vma() 1217 * which copies vma into new_vma and unmaps vma. After the copy 1218 * operation both new_vma and vma share a reference to the resv_map 1219 * struct, and at that point vma is about to be unmapped. We don't 1220 * want to return the reservation to the pool at unmap of vma because 1221 * the reservation still lives on in new_vma, so simply decrement the 1222 * ref here and remove the resv_map reference from this vma. 1223 */ 1224 struct resv_map *reservations = vma_resv_map(vma); 1225 1226 if (reservations && is_vma_resv_set(vma, HPAGE_RESV_OWNER)) { 1227 resv_map_put_hugetlb_cgroup_uncharge_info(reservations); 1228 kref_put(&reservations->refs, resv_map_release); 1229 } 1230 1231 hugetlb_dup_vma_private(vma); 1232 } 1233 1234 static void enqueue_hugetlb_folio(struct hstate *h, struct folio *folio) 1235 { 1236 int nid = folio_nid(folio); 1237 1238 lockdep_assert_held(&hugetlb_lock); 1239 VM_BUG_ON_FOLIO(folio_ref_count(folio), folio); 1240 1241 list_move(&folio->lru, &h->hugepage_freelists[nid]); 1242 h->free_huge_pages++; 1243 h->free_huge_pages_node[nid]++; 1244 folio_set_hugetlb_freed(folio); 1245 } 1246 1247 static struct folio *dequeue_hugetlb_folio_node_exact(struct hstate *h, 1248 int nid) 1249 { 1250 struct folio *folio; 1251 bool pin = !!(current->flags & PF_MEMALLOC_PIN); 1252 1253 lockdep_assert_held(&hugetlb_lock); 1254 list_for_each_entry(folio, &h->hugepage_freelists[nid], lru) { 1255 if (pin && !folio_is_longterm_pinnable(folio)) 1256 continue; 1257 1258 if (folio_test_hwpoison(folio)) 1259 continue; 1260 1261 if (is_migrate_isolate_page(&folio->page)) 1262 continue; 1263 1264 list_move(&folio->lru, &h->hugepage_activelist); 1265 folio_ref_unfreeze(folio, 1); 1266 folio_clear_hugetlb_freed(folio); 1267 h->free_huge_pages--; 1268 h->free_huge_pages_node[nid]--; 1269 return folio; 1270 } 1271 1272 return NULL; 1273 } 1274 1275 static struct folio *dequeue_hugetlb_folio_nodemask(struct hstate *h, gfp_t gfp_mask, 1276 int nid, nodemask_t *nmask) 1277 { 1278 unsigned int cpuset_mems_cookie; 1279 struct zonelist *zonelist; 1280 struct zone *zone; 1281 struct zoneref *z; 1282 int node = NUMA_NO_NODE; 1283 1284 /* 'nid' should not be NUMA_NO_NODE. Try to catch any misuse of it and rectifiy. */ 1285 if (nid == NUMA_NO_NODE) 1286 nid = numa_node_id(); 1287 1288 zonelist = node_zonelist(nid, gfp_mask); 1289 1290 retry_cpuset: 1291 cpuset_mems_cookie = read_mems_allowed_begin(); 1292 for_each_zone_zonelist_nodemask(zone, z, zonelist, gfp_zone(gfp_mask), nmask) { 1293 struct folio *folio; 1294 1295 if (!cpuset_zone_allowed(zone, gfp_mask)) 1296 continue; 1297 /* 1298 * no need to ask again on the same node. Pool is node rather than 1299 * zone aware 1300 */ 1301 if (zone_to_nid(zone) == node) 1302 continue; 1303 node = zone_to_nid(zone); 1304 1305 folio = dequeue_hugetlb_folio_node_exact(h, node); 1306 if (folio) 1307 return folio; 1308 } 1309 if (unlikely(read_mems_allowed_retry(cpuset_mems_cookie))) 1310 goto retry_cpuset; 1311 1312 return NULL; 1313 } 1314 1315 static unsigned long available_huge_pages(struct hstate *h) 1316 { 1317 return h->free_huge_pages - h->resv_huge_pages; 1318 } 1319 1320 static struct folio *dequeue_hugetlb_folio_vma(struct hstate *h, 1321 struct vm_area_struct *vma, 1322 unsigned long address, long gbl_chg) 1323 { 1324 struct folio *folio = NULL; 1325 struct mempolicy *mpol; 1326 gfp_t gfp_mask; 1327 nodemask_t *nodemask; 1328 int nid; 1329 1330 /* 1331 * gbl_chg==1 means the allocation requires a new page that was not 1332 * reserved before. Making sure there's at least one free page. 1333 */ 1334 if (gbl_chg && !available_huge_pages(h)) 1335 goto err; 1336 1337 gfp_mask = htlb_alloc_mask(h); 1338 nid = huge_node(vma, address, gfp_mask, &mpol, &nodemask); 1339 1340 if (mpol_is_preferred_many(mpol)) { 1341 folio = dequeue_hugetlb_folio_nodemask(h, gfp_mask, 1342 nid, nodemask); 1343 1344 /* Fallback to all nodes if page==NULL */ 1345 nodemask = NULL; 1346 } 1347 1348 if (!folio) 1349 folio = dequeue_hugetlb_folio_nodemask(h, gfp_mask, 1350 nid, nodemask); 1351 1352 mpol_cond_put(mpol); 1353 return folio; 1354 1355 err: 1356 return NULL; 1357 } 1358 1359 #if defined(CONFIG_ARCH_HAS_GIGANTIC_PAGE) && defined(CONFIG_CONTIG_ALLOC) 1360 static struct folio *alloc_gigantic_frozen_folio(int order, gfp_t gfp_mask, 1361 int nid, nodemask_t *nodemask) 1362 { 1363 struct folio *folio; 1364 1365 folio = hugetlb_cma_alloc_frozen_folio(order, gfp_mask, nid, nodemask); 1366 if (folio) 1367 return folio; 1368 1369 if (hugetlb_cma_exclusive_alloc()) 1370 return NULL; 1371 1372 folio = (struct folio *)alloc_contig_frozen_pages(1 << order, gfp_mask, 1373 nid, nodemask); 1374 return folio; 1375 } 1376 #else /* !CONFIG_ARCH_HAS_GIGANTIC_PAGE || !CONFIG_CONTIG_ALLOC */ 1377 static struct folio *alloc_gigantic_frozen_folio(int order, gfp_t gfp_mask, int nid, 1378 nodemask_t *nodemask) 1379 { 1380 return NULL; 1381 } 1382 #endif 1383 1384 /* 1385 * Remove hugetlb folio from lists. 1386 * If vmemmap exists for the folio, clear the hugetlb flag so that the 1387 * folio appears as just a compound page. Otherwise, wait until after 1388 * allocating vmemmap to clear the flag. 1389 * 1390 * Must be called with hugetlb lock held. 1391 */ 1392 void remove_hugetlb_folio(struct hstate *h, struct folio *folio, 1393 bool adjust_surplus) 1394 { 1395 int nid = folio_nid(folio); 1396 1397 VM_BUG_ON_FOLIO(hugetlb_cgroup_from_folio(folio), folio); 1398 VM_BUG_ON_FOLIO(hugetlb_cgroup_from_folio_rsvd(folio), folio); 1399 1400 lockdep_assert_held(&hugetlb_lock); 1401 if (hstate_is_gigantic_no_runtime(h)) 1402 return; 1403 1404 list_del(&folio->lru); 1405 1406 if (folio_test_hugetlb_freed(folio)) { 1407 folio_clear_hugetlb_freed(folio); 1408 h->free_huge_pages--; 1409 h->free_huge_pages_node[nid]--; 1410 } 1411 if (adjust_surplus) { 1412 h->surplus_huge_pages--; 1413 h->surplus_huge_pages_node[nid]--; 1414 } 1415 1416 /* 1417 * We can only clear the hugetlb flag after allocating vmemmap 1418 * pages. Otherwise, someone (memory error handling) may try to write 1419 * to tail struct pages. 1420 */ 1421 if (!folio_test_hugetlb_vmemmap_optimized(folio)) 1422 __folio_clear_hugetlb(folio); 1423 1424 h->nr_huge_pages--; 1425 h->nr_huge_pages_node[nid]--; 1426 } 1427 1428 void add_hugetlb_folio(struct hstate *h, struct folio *folio, 1429 bool adjust_surplus) 1430 { 1431 int nid = folio_nid(folio); 1432 1433 VM_BUG_ON_FOLIO(!folio_test_hugetlb_vmemmap_optimized(folio), folio); 1434 1435 lockdep_assert_held(&hugetlb_lock); 1436 1437 INIT_LIST_HEAD(&folio->lru); 1438 h->nr_huge_pages++; 1439 h->nr_huge_pages_node[nid]++; 1440 1441 if (adjust_surplus) { 1442 h->surplus_huge_pages++; 1443 h->surplus_huge_pages_node[nid]++; 1444 } 1445 1446 __folio_set_hugetlb(folio); 1447 folio_change_private(folio, NULL); 1448 /* 1449 * We have to set hugetlb_vmemmap_optimized again as above 1450 * folio_change_private(folio, NULL) cleared it. 1451 */ 1452 folio_set_hugetlb_vmemmap_optimized(folio); 1453 1454 arch_clear_hugetlb_flags(folio); 1455 enqueue_hugetlb_folio(h, folio); 1456 } 1457 1458 static void __update_and_free_hugetlb_folio(struct hstate *h, 1459 struct folio *folio) 1460 { 1461 bool clear_flag = folio_test_hugetlb_vmemmap_optimized(folio); 1462 1463 if (hstate_is_gigantic_no_runtime(h)) 1464 return; 1465 1466 /* 1467 * If we don't know which subpages are hwpoisoned, we can't free 1468 * the hugepage, so it's leaked intentionally. 1469 */ 1470 if (folio_test_hugetlb_raw_hwp_unreliable(folio)) 1471 return; 1472 1473 /* 1474 * If folio is not vmemmap optimized (!clear_flag), then the folio 1475 * is no longer identified as a hugetlb page. hugetlb_vmemmap_restore_folio 1476 * can only be passed hugetlb pages and will BUG otherwise. 1477 */ 1478 if (clear_flag && hugetlb_vmemmap_restore_folio(h, folio)) { 1479 spin_lock_irq(&hugetlb_lock); 1480 /* 1481 * If we cannot allocate vmemmap pages, just refuse to free the 1482 * page and put the page back on the hugetlb free list and treat 1483 * as a surplus page. 1484 */ 1485 add_hugetlb_folio(h, folio, true); 1486 spin_unlock_irq(&hugetlb_lock); 1487 return; 1488 } 1489 1490 /* 1491 * If vmemmap pages were allocated above, then we need to clear the 1492 * hugetlb flag under the hugetlb lock. 1493 */ 1494 if (folio_test_hugetlb(folio)) { 1495 spin_lock_irq(&hugetlb_lock); 1496 __folio_clear_hugetlb(folio); 1497 spin_unlock_irq(&hugetlb_lock); 1498 } 1499 1500 /* 1501 * Move PageHWPoison flag from head page to the raw error pages, 1502 * which makes any healthy subpages reusable. 1503 */ 1504 if (unlikely(folio_test_hwpoison(folio))) 1505 folio_clear_hugetlb_hwpoison(folio); 1506 1507 VM_BUG_ON_FOLIO(folio_ref_count(folio), folio); 1508 if (folio_test_hugetlb_cma(folio)) 1509 hugetlb_cma_free_frozen_folio(folio); 1510 else 1511 free_frozen_pages(&folio->page, folio_order(folio)); 1512 } 1513 1514 /* 1515 * As update_and_free_hugetlb_folio() can be called under any context, so we cannot 1516 * use GFP_KERNEL to allocate vmemmap pages. However, we can defer the 1517 * actual freeing in a workqueue to prevent from using GFP_ATOMIC to allocate 1518 * the vmemmap pages. 1519 * 1520 * free_hpage_workfn() locklessly retrieves the linked list of pages to be 1521 * freed and frees them one-by-one. As the page->mapping pointer is going 1522 * to be cleared in free_hpage_workfn() anyway, it is reused as the llist_node 1523 * structure of a lockless linked list of huge pages to be freed. 1524 */ 1525 static LLIST_HEAD(hpage_freelist); 1526 1527 static void free_hpage_workfn(struct work_struct *work) 1528 { 1529 struct llist_node *node; 1530 1531 node = llist_del_all(&hpage_freelist); 1532 1533 while (node) { 1534 struct folio *folio; 1535 struct hstate *h; 1536 1537 folio = container_of((struct address_space **)node, 1538 struct folio, mapping); 1539 node = node->next; 1540 folio->mapping = NULL; 1541 /* 1542 * The VM_BUG_ON_FOLIO(!folio_test_hugetlb(folio), folio) in 1543 * folio_hstate() is going to trigger because a previous call to 1544 * remove_hugetlb_folio() will clear the hugetlb bit, so do 1545 * not use folio_hstate() directly. 1546 */ 1547 h = size_to_hstate(folio_size(folio)); 1548 1549 __update_and_free_hugetlb_folio(h, folio); 1550 1551 cond_resched(); 1552 } 1553 } 1554 static DECLARE_WORK(free_hpage_work, free_hpage_workfn); 1555 1556 static inline void flush_free_hpage_work(struct hstate *h) 1557 { 1558 if (hugetlb_vmemmap_optimizable(h)) 1559 flush_work(&free_hpage_work); 1560 } 1561 1562 static void update_and_free_hugetlb_folio(struct hstate *h, struct folio *folio, 1563 bool atomic) 1564 { 1565 if (!folio_test_hugetlb_vmemmap_optimized(folio) || !atomic) { 1566 __update_and_free_hugetlb_folio(h, folio); 1567 return; 1568 } 1569 1570 /* 1571 * Defer freeing to avoid using GFP_ATOMIC to allocate vmemmap pages. 1572 * 1573 * Only call schedule_work() if hpage_freelist is previously 1574 * empty. Otherwise, schedule_work() had been called but the workfn 1575 * hasn't retrieved the list yet. 1576 */ 1577 if (llist_add((struct llist_node *)&folio->mapping, &hpage_freelist)) 1578 schedule_work(&free_hpage_work); 1579 } 1580 1581 static void bulk_vmemmap_restore_error(struct hstate *h, 1582 struct list_head *folio_list, 1583 struct list_head *non_hvo_folios) 1584 { 1585 struct folio *folio, *t_folio; 1586 1587 if (!list_empty(non_hvo_folios)) { 1588 /* 1589 * Free any restored hugetlb pages so that restore of the 1590 * entire list can be retried. 1591 * The idea is that in the common case of ENOMEM errors freeing 1592 * hugetlb pages with vmemmap we will free up memory so that we 1593 * can allocate vmemmap for more hugetlb pages. 1594 */ 1595 list_for_each_entry_safe(folio, t_folio, non_hvo_folios, lru) { 1596 list_del(&folio->lru); 1597 spin_lock_irq(&hugetlb_lock); 1598 __folio_clear_hugetlb(folio); 1599 spin_unlock_irq(&hugetlb_lock); 1600 update_and_free_hugetlb_folio(h, folio, false); 1601 cond_resched(); 1602 } 1603 } else { 1604 /* 1605 * In the case where there are no folios which can be 1606 * immediately freed, we loop through the list trying to restore 1607 * vmemmap individually in the hope that someone elsewhere may 1608 * have done something to cause success (such as freeing some 1609 * memory). If unable to restore a hugetlb page, the hugetlb 1610 * page is made a surplus page and removed from the list. 1611 * If are able to restore vmemmap and free one hugetlb page, we 1612 * quit processing the list to retry the bulk operation. 1613 */ 1614 list_for_each_entry_safe(folio, t_folio, folio_list, lru) 1615 if (hugetlb_vmemmap_restore_folio(h, folio)) { 1616 list_del(&folio->lru); 1617 spin_lock_irq(&hugetlb_lock); 1618 add_hugetlb_folio(h, folio, true); 1619 spin_unlock_irq(&hugetlb_lock); 1620 } else { 1621 list_del(&folio->lru); 1622 spin_lock_irq(&hugetlb_lock); 1623 __folio_clear_hugetlb(folio); 1624 spin_unlock_irq(&hugetlb_lock); 1625 update_and_free_hugetlb_folio(h, folio, false); 1626 cond_resched(); 1627 break; 1628 } 1629 } 1630 } 1631 1632 static void update_and_free_pages_bulk(struct hstate *h, 1633 struct list_head *folio_list) 1634 { 1635 long ret; 1636 struct folio *folio, *t_folio; 1637 LIST_HEAD(non_hvo_folios); 1638 1639 /* 1640 * First allocate required vmemmmap (if necessary) for all folios. 1641 * Carefully handle errors and free up any available hugetlb pages 1642 * in an effort to make forward progress. 1643 */ 1644 retry: 1645 ret = hugetlb_vmemmap_restore_folios(h, folio_list, &non_hvo_folios); 1646 if (ret < 0) { 1647 bulk_vmemmap_restore_error(h, folio_list, &non_hvo_folios); 1648 goto retry; 1649 } 1650 1651 /* 1652 * At this point, list should be empty, ret should be >= 0 and there 1653 * should only be pages on the non_hvo_folios list. 1654 * Do note that the non_hvo_folios list could be empty. 1655 * Without HVO enabled, ret will be 0 and there is no need to call 1656 * __folio_clear_hugetlb as this was done previously. 1657 */ 1658 VM_WARN_ON(!list_empty(folio_list)); 1659 VM_WARN_ON(ret < 0); 1660 if (!list_empty(&non_hvo_folios) && ret) { 1661 spin_lock_irq(&hugetlb_lock); 1662 list_for_each_entry(folio, &non_hvo_folios, lru) 1663 __folio_clear_hugetlb(folio); 1664 spin_unlock_irq(&hugetlb_lock); 1665 } 1666 1667 list_for_each_entry_safe(folio, t_folio, &non_hvo_folios, lru) { 1668 update_and_free_hugetlb_folio(h, folio, false); 1669 cond_resched(); 1670 } 1671 } 1672 1673 struct hstate *size_to_hstate(unsigned long size) 1674 { 1675 struct hstate *h; 1676 1677 for_each_hstate(h) { 1678 if (huge_page_size(h) == size) 1679 return h; 1680 } 1681 return NULL; 1682 } 1683 1684 void free_huge_folio(struct folio *folio) 1685 { 1686 /* 1687 * Can't pass hstate in here because it is called from the 1688 * generic mm code. 1689 */ 1690 struct hstate *h = folio_hstate(folio); 1691 int nid = folio_nid(folio); 1692 struct hugepage_subpool *spool = hugetlb_folio_subpool(folio); 1693 bool restore_reserve; 1694 unsigned long flags; 1695 1696 VM_BUG_ON_FOLIO(folio_ref_count(folio), folio); 1697 VM_BUG_ON_FOLIO(folio_mapcount(folio), folio); 1698 1699 hugetlb_set_folio_subpool(folio, NULL); 1700 if (folio_test_anon(folio)) 1701 __ClearPageAnonExclusive(&folio->page); 1702 folio->mapping = NULL; 1703 restore_reserve = folio_test_hugetlb_restore_reserve(folio); 1704 folio_clear_hugetlb_restore_reserve(folio); 1705 1706 /* 1707 * If HPageRestoreReserve was set on page, page allocation consumed a 1708 * reservation. If the page was associated with a subpool, there 1709 * would have been a page reserved in the subpool before allocation 1710 * via hugepage_subpool_get_pages(). Since we are 'restoring' the 1711 * reservation, do not call hugepage_subpool_put_pages() as this will 1712 * remove the reserved page from the subpool. 1713 */ 1714 if (!restore_reserve) { 1715 /* 1716 * A return code of zero implies that the subpool will be 1717 * under its minimum size if the reservation is not restored 1718 * after page is free. Therefore, force restore_reserve 1719 * operation. 1720 */ 1721 if (hugepage_subpool_put_pages(spool, 1) == 0) 1722 restore_reserve = true; 1723 } 1724 1725 spin_lock_irqsave(&hugetlb_lock, flags); 1726 folio_clear_hugetlb_migratable(folio); 1727 hugetlb_cgroup_uncharge_folio(hstate_index(h), 1728 pages_per_huge_page(h), folio); 1729 hugetlb_cgroup_uncharge_folio_rsvd(hstate_index(h), 1730 pages_per_huge_page(h), folio); 1731 lruvec_stat_mod_folio(folio, NR_HUGETLB, -pages_per_huge_page(h)); 1732 mem_cgroup_uncharge(folio); 1733 if (restore_reserve) 1734 h->resv_huge_pages++; 1735 1736 if (folio_test_hugetlb_temporary(folio)) { 1737 remove_hugetlb_folio(h, folio, false); 1738 spin_unlock_irqrestore(&hugetlb_lock, flags); 1739 update_and_free_hugetlb_folio(h, folio, true); 1740 } else if (h->surplus_huge_pages_node[nid]) { 1741 /* remove the page from active list */ 1742 remove_hugetlb_folio(h, folio, true); 1743 spin_unlock_irqrestore(&hugetlb_lock, flags); 1744 update_and_free_hugetlb_folio(h, folio, true); 1745 } else { 1746 arch_clear_hugetlb_flags(folio); 1747 enqueue_hugetlb_folio(h, folio); 1748 spin_unlock_irqrestore(&hugetlb_lock, flags); 1749 } 1750 } 1751 1752 /* 1753 * Must be called with the hugetlb lock held 1754 */ 1755 static void account_new_hugetlb_folio(struct hstate *h, struct folio *folio) 1756 { 1757 lockdep_assert_held(&hugetlb_lock); 1758 h->nr_huge_pages++; 1759 h->nr_huge_pages_node[folio_nid(folio)]++; 1760 } 1761 1762 void init_new_hugetlb_folio(struct folio *folio) 1763 { 1764 __folio_set_hugetlb(folio); 1765 INIT_LIST_HEAD(&folio->lru); 1766 hugetlb_set_folio_subpool(folio, NULL); 1767 set_hugetlb_cgroup(folio, NULL); 1768 set_hugetlb_cgroup_rsvd(folio, NULL); 1769 } 1770 1771 /* 1772 * Find and lock address space (mapping) in write mode. 1773 * 1774 * Upon entry, the folio is locked which means that folio_mapping() is 1775 * stable. Due to locking order, we can only trylock_write. If we can 1776 * not get the lock, simply return NULL to caller. 1777 */ 1778 struct address_space *hugetlb_folio_mapping_lock_write(struct folio *folio) 1779 { 1780 struct address_space *mapping = folio_mapping(folio); 1781 1782 if (!mapping) 1783 return mapping; 1784 1785 if (i_mmap_trylock_write(mapping)) 1786 return mapping; 1787 1788 return NULL; 1789 } 1790 1791 static struct folio *alloc_buddy_frozen_folio(int order, gfp_t gfp_mask, 1792 int nid, nodemask_t *nmask, nodemask_t *node_alloc_noretry) 1793 { 1794 struct folio *folio; 1795 bool alloc_try_hard = true; 1796 1797 /* 1798 * By default we always try hard to allocate the folio with 1799 * __GFP_RETRY_MAYFAIL flag. However, if we are allocating folios in 1800 * a loop (to adjust global huge page counts) and previous allocation 1801 * failed, do not continue to try hard on the same node. Use the 1802 * node_alloc_noretry bitmap to manage this state information. 1803 */ 1804 if (node_alloc_noretry && node_isset(nid, *node_alloc_noretry)) 1805 alloc_try_hard = false; 1806 if (alloc_try_hard) 1807 gfp_mask |= __GFP_RETRY_MAYFAIL; 1808 1809 folio = (struct folio *)__alloc_frozen_pages(gfp_mask, order, nid, nmask); 1810 1811 /* 1812 * If we did not specify __GFP_RETRY_MAYFAIL, but still got a 1813 * folio this indicates an overall state change. Clear bit so 1814 * that we resume normal 'try hard' allocations. 1815 */ 1816 if (node_alloc_noretry && folio && !alloc_try_hard) 1817 node_clear(nid, *node_alloc_noretry); 1818 1819 /* 1820 * If we tried hard to get a folio but failed, set bit so that 1821 * subsequent attempts will not try as hard until there is an 1822 * overall state change. 1823 */ 1824 if (node_alloc_noretry && !folio && alloc_try_hard) 1825 node_set(nid, *node_alloc_noretry); 1826 1827 if (!folio) { 1828 __count_vm_event(HTLB_BUDDY_PGALLOC_FAIL); 1829 return NULL; 1830 } 1831 1832 __count_vm_event(HTLB_BUDDY_PGALLOC); 1833 return folio; 1834 } 1835 1836 static struct folio *only_alloc_fresh_hugetlb_folio(struct hstate *h, 1837 gfp_t gfp_mask, int nid, nodemask_t *nmask, 1838 nodemask_t *node_alloc_noretry) 1839 { 1840 struct folio *folio; 1841 int order = huge_page_order(h); 1842 1843 if (nid == NUMA_NO_NODE) 1844 nid = numa_mem_id(); 1845 1846 if (order_is_gigantic(order)) 1847 folio = alloc_gigantic_frozen_folio(order, gfp_mask, nid, nmask); 1848 else 1849 folio = alloc_buddy_frozen_folio(order, gfp_mask, nid, nmask, 1850 node_alloc_noretry); 1851 if (folio) 1852 init_new_hugetlb_folio(folio); 1853 return folio; 1854 } 1855 1856 /* 1857 * Common helper to allocate a fresh hugetlb folio. All specific allocators 1858 * should use this function to get new hugetlb folio 1859 * 1860 * Note that returned folio is 'frozen': ref count of head page and all tail 1861 * pages is zero, and the accounting must be done in the caller. 1862 */ 1863 static struct folio *alloc_fresh_hugetlb_folio(struct hstate *h, 1864 gfp_t gfp_mask, int nid, nodemask_t *nmask) 1865 { 1866 struct folio *folio; 1867 1868 folio = only_alloc_fresh_hugetlb_folio(h, gfp_mask, nid, nmask, NULL); 1869 if (folio) 1870 hugetlb_vmemmap_optimize_folio(h, folio); 1871 return folio; 1872 } 1873 1874 void prep_and_add_allocated_folios(struct hstate *h, 1875 struct list_head *folio_list) 1876 { 1877 unsigned long flags; 1878 struct folio *folio, *tmp_f; 1879 1880 /* Send list for bulk vmemmap optimization processing */ 1881 hugetlb_vmemmap_optimize_folios(h, folio_list); 1882 1883 /* Add all new pool pages to free lists in one lock cycle */ 1884 spin_lock_irqsave(&hugetlb_lock, flags); 1885 list_for_each_entry_safe(folio, tmp_f, folio_list, lru) { 1886 account_new_hugetlb_folio(h, folio); 1887 enqueue_hugetlb_folio(h, folio); 1888 } 1889 spin_unlock_irqrestore(&hugetlb_lock, flags); 1890 } 1891 1892 /* 1893 * Allocates a fresh hugetlb page in a node interleaved manner. The page 1894 * will later be added to the appropriate hugetlb pool. 1895 */ 1896 static struct folio *alloc_pool_huge_folio(struct hstate *h, 1897 nodemask_t *nodes_allowed, 1898 nodemask_t *node_alloc_noretry, 1899 int *next_node) 1900 { 1901 gfp_t gfp_mask = htlb_alloc_mask(h) | __GFP_THISNODE; 1902 int nr_nodes, node; 1903 1904 for_each_node_mask_to_alloc(next_node, nr_nodes, node, nodes_allowed) { 1905 struct folio *folio; 1906 1907 folio = only_alloc_fresh_hugetlb_folio(h, gfp_mask, node, 1908 nodes_allowed, node_alloc_noretry); 1909 if (folio) 1910 return folio; 1911 } 1912 1913 return NULL; 1914 } 1915 1916 /* 1917 * Remove huge page from pool from next node to free. Attempt to keep 1918 * persistent huge pages more or less balanced over allowed nodes. 1919 * This routine only 'removes' the hugetlb page. The caller must make 1920 * an additional call to free the page to low level allocators. 1921 * Called with hugetlb_lock locked. 1922 */ 1923 static struct folio *remove_pool_hugetlb_folio(struct hstate *h, 1924 nodemask_t *nodes_allowed, bool acct_surplus) 1925 { 1926 int nr_nodes, node; 1927 struct folio *folio = NULL; 1928 1929 lockdep_assert_held(&hugetlb_lock); 1930 for_each_node_mask_to_free(h, nr_nodes, node, nodes_allowed) { 1931 /* 1932 * If we're returning unused surplus pages, only examine 1933 * nodes with surplus pages. 1934 */ 1935 if ((!acct_surplus || h->surplus_huge_pages_node[node]) && 1936 !list_empty(&h->hugepage_freelists[node])) { 1937 folio = list_entry(h->hugepage_freelists[node].next, 1938 struct folio, lru); 1939 remove_hugetlb_folio(h, folio, acct_surplus); 1940 break; 1941 } 1942 } 1943 1944 return folio; 1945 } 1946 1947 /* 1948 * Dissolve a given free hugetlb folio into free buddy pages. This function 1949 * does nothing for in-use hugetlb folios and non-hugetlb folios. 1950 * This function returns values like below: 1951 * 1952 * -ENOMEM: failed to allocate vmemmap pages to free the freed hugepages 1953 * when the system is under memory pressure and the feature of 1954 * freeing unused vmemmap pages associated with each hugetlb page 1955 * is enabled. 1956 * -EBUSY: failed to dissolved free hugepages or the hugepage is in-use 1957 * (allocated or reserved.) 1958 * 0: successfully dissolved free hugepages or the page is not a 1959 * hugepage (considered as already dissolved) 1960 */ 1961 int dissolve_free_hugetlb_folio(struct folio *folio) 1962 { 1963 int rc = -EBUSY; 1964 1965 retry: 1966 /* Not to disrupt normal path by vainly holding hugetlb_lock */ 1967 if (!folio_test_hugetlb(folio)) 1968 return 0; 1969 1970 spin_lock_irq(&hugetlb_lock); 1971 if (!folio_test_hugetlb(folio)) { 1972 rc = 0; 1973 goto out; 1974 } 1975 1976 if (!folio_ref_count(folio)) { 1977 struct hstate *h = folio_hstate(folio); 1978 bool adjust_surplus = false; 1979 1980 if (!available_huge_pages(h)) 1981 goto out; 1982 1983 /* 1984 * We should make sure that the page is already on the free list 1985 * when it is dissolved. 1986 */ 1987 if (unlikely(!folio_test_hugetlb_freed(folio))) { 1988 spin_unlock_irq(&hugetlb_lock); 1989 cond_resched(); 1990 1991 /* 1992 * Theoretically, we should return -EBUSY when we 1993 * encounter this race. In fact, we have a chance 1994 * to successfully dissolve the page if we do a 1995 * retry. Because the race window is quite small. 1996 * If we seize this opportunity, it is an optimization 1997 * for increasing the success rate of dissolving page. 1998 */ 1999 goto retry; 2000 } 2001 2002 if (h->surplus_huge_pages_node[folio_nid(folio)]) 2003 adjust_surplus = true; 2004 remove_hugetlb_folio(h, folio, adjust_surplus); 2005 h->max_huge_pages--; 2006 spin_unlock_irq(&hugetlb_lock); 2007 2008 /* 2009 * Normally update_and_free_hugtlb_folio will allocate required vmemmmap 2010 * before freeing the page. update_and_free_hugtlb_folio will fail to 2011 * free the page if it can not allocate required vmemmap. We 2012 * need to adjust max_huge_pages if the page is not freed. 2013 * Attempt to allocate vmemmmap here so that we can take 2014 * appropriate action on failure. 2015 * 2016 * The folio_test_hugetlb check here is because 2017 * remove_hugetlb_folio will clear hugetlb folio flag for 2018 * non-vmemmap optimized hugetlb folios. 2019 */ 2020 if (folio_test_hugetlb(folio)) { 2021 rc = hugetlb_vmemmap_restore_folio(h, folio); 2022 if (rc) { 2023 spin_lock_irq(&hugetlb_lock); 2024 add_hugetlb_folio(h, folio, adjust_surplus); 2025 h->max_huge_pages++; 2026 goto out; 2027 } 2028 } else { 2029 rc = 0; 2030 } 2031 2032 update_and_free_hugetlb_folio(h, folio, false); 2033 return rc; 2034 } 2035 out: 2036 spin_unlock_irq(&hugetlb_lock); 2037 return rc; 2038 } 2039 2040 /* 2041 * Dissolve free hugepages in a given pfn range. Used by memory hotplug to 2042 * make specified memory blocks removable from the system. 2043 * Note that this will dissolve a free gigantic hugepage completely, if any 2044 * part of it lies within the given range. 2045 * Also note that if dissolve_free_hugetlb_folio() returns with an error, all 2046 * free hugetlb folios that were dissolved before that error are lost. 2047 */ 2048 int dissolve_free_hugetlb_folios(unsigned long start_pfn, unsigned long end_pfn) 2049 { 2050 unsigned long pfn; 2051 struct folio *folio; 2052 int rc = 0; 2053 unsigned int order; 2054 struct hstate *h; 2055 2056 if (!hugepages_supported()) 2057 return rc; 2058 2059 order = huge_page_order(&default_hstate); 2060 for_each_hstate(h) 2061 order = min(order, huge_page_order(h)); 2062 2063 for (pfn = start_pfn; pfn < end_pfn; pfn += 1 << order) { 2064 folio = pfn_folio(pfn); 2065 rc = dissolve_free_hugetlb_folio(folio); 2066 if (rc) 2067 break; 2068 } 2069 2070 return rc; 2071 } 2072 2073 /* 2074 * Allocates a fresh surplus page from the page allocator. 2075 */ 2076 static struct folio *alloc_surplus_hugetlb_folio(struct hstate *h, 2077 gfp_t gfp_mask, int nid, nodemask_t *nmask) 2078 { 2079 struct folio *folio = NULL; 2080 2081 if (hstate_is_gigantic_no_runtime(h)) 2082 return NULL; 2083 2084 spin_lock_irq(&hugetlb_lock); 2085 if (h->surplus_huge_pages >= h->nr_overcommit_huge_pages) 2086 goto out_unlock; 2087 spin_unlock_irq(&hugetlb_lock); 2088 2089 folio = alloc_fresh_hugetlb_folio(h, gfp_mask, nid, nmask); 2090 if (!folio) 2091 return NULL; 2092 2093 spin_lock_irq(&hugetlb_lock); 2094 /* 2095 * nr_huge_pages needs to be adjusted within the same lock cycle 2096 * as surplus_pages, otherwise it might confuse 2097 * persistent_huge_pages() momentarily. 2098 */ 2099 account_new_hugetlb_folio(h, folio); 2100 2101 /* 2102 * We could have raced with the pool size change. 2103 * Double check that and simply deallocate the new page 2104 * if we would end up overcommiting the surpluses. Abuse 2105 * temporary page to workaround the nasty free_huge_folio 2106 * codeflow 2107 */ 2108 if (h->surplus_huge_pages >= h->nr_overcommit_huge_pages) { 2109 folio_set_hugetlb_temporary(folio); 2110 spin_unlock_irq(&hugetlb_lock); 2111 free_huge_folio(folio); 2112 return NULL; 2113 } 2114 2115 h->surplus_huge_pages++; 2116 h->surplus_huge_pages_node[folio_nid(folio)]++; 2117 2118 out_unlock: 2119 spin_unlock_irq(&hugetlb_lock); 2120 2121 return folio; 2122 } 2123 2124 static struct folio *alloc_migrate_hugetlb_folio(struct hstate *h, gfp_t gfp_mask, 2125 int nid, nodemask_t *nmask) 2126 { 2127 struct folio *folio; 2128 2129 if (hstate_is_gigantic(h)) 2130 return NULL; 2131 2132 folio = alloc_fresh_hugetlb_folio(h, gfp_mask, nid, nmask); 2133 if (!folio) 2134 return NULL; 2135 2136 spin_lock_irq(&hugetlb_lock); 2137 account_new_hugetlb_folio(h, folio); 2138 spin_unlock_irq(&hugetlb_lock); 2139 2140 /* fresh huge pages are frozen */ 2141 folio_ref_unfreeze(folio, 1); 2142 /* 2143 * We do not account these pages as surplus because they are only 2144 * temporary and will be released properly on the last reference 2145 */ 2146 folio_set_hugetlb_temporary(folio); 2147 2148 return folio; 2149 } 2150 2151 /* 2152 * Use the VMA's mpolicy to allocate a huge page from the buddy. 2153 */ 2154 static 2155 struct folio *alloc_buddy_hugetlb_folio_with_mpol(struct hstate *h, 2156 struct vm_area_struct *vma, unsigned long addr) 2157 { 2158 struct folio *folio = NULL; 2159 struct mempolicy *mpol; 2160 gfp_t gfp_mask = htlb_alloc_mask(h); 2161 int nid; 2162 nodemask_t *nodemask; 2163 2164 nid = huge_node(vma, addr, gfp_mask, &mpol, &nodemask); 2165 if (mpol_is_preferred_many(mpol)) { 2166 gfp_t gfp = gfp_mask & ~(__GFP_DIRECT_RECLAIM | __GFP_NOFAIL); 2167 2168 folio = alloc_surplus_hugetlb_folio(h, gfp, nid, nodemask); 2169 2170 /* Fallback to all nodes if page==NULL */ 2171 nodemask = NULL; 2172 } 2173 2174 if (!folio) 2175 folio = alloc_surplus_hugetlb_folio(h, gfp_mask, nid, nodemask); 2176 mpol_cond_put(mpol); 2177 return folio; 2178 } 2179 2180 struct folio *alloc_hugetlb_folio_reserve(struct hstate *h, int preferred_nid, 2181 nodemask_t *nmask, gfp_t gfp_mask) 2182 { 2183 struct folio *folio; 2184 2185 spin_lock_irq(&hugetlb_lock); 2186 if (!h->resv_huge_pages) { 2187 spin_unlock_irq(&hugetlb_lock); 2188 return NULL; 2189 } 2190 2191 folio = dequeue_hugetlb_folio_nodemask(h, gfp_mask, preferred_nid, 2192 nmask); 2193 if (folio) 2194 h->resv_huge_pages--; 2195 2196 spin_unlock_irq(&hugetlb_lock); 2197 return folio; 2198 } 2199 2200 /* folio migration callback function */ 2201 struct folio *alloc_hugetlb_folio_nodemask(struct hstate *h, int preferred_nid, 2202 nodemask_t *nmask, gfp_t gfp_mask, bool allow_alloc_fallback) 2203 { 2204 spin_lock_irq(&hugetlb_lock); 2205 if (available_huge_pages(h)) { 2206 struct folio *folio; 2207 2208 folio = dequeue_hugetlb_folio_nodemask(h, gfp_mask, 2209 preferred_nid, nmask); 2210 if (folio) { 2211 spin_unlock_irq(&hugetlb_lock); 2212 return folio; 2213 } 2214 } 2215 spin_unlock_irq(&hugetlb_lock); 2216 2217 /* We cannot fallback to other nodes, as we could break the per-node pool. */ 2218 if (!allow_alloc_fallback) 2219 gfp_mask |= __GFP_THISNODE; 2220 2221 return alloc_migrate_hugetlb_folio(h, gfp_mask, preferred_nid, nmask); 2222 } 2223 2224 static nodemask_t *policy_mbind_nodemask(gfp_t gfp) 2225 { 2226 #ifdef CONFIG_NUMA 2227 struct mempolicy *mpol = get_task_policy(current); 2228 2229 /* 2230 * Only enforce MPOL_BIND policy which overlaps with cpuset policy 2231 * (from policy_nodemask) specifically for hugetlb case 2232 */ 2233 if (mpol->mode == MPOL_BIND && 2234 (apply_policy_zone(mpol, gfp_zone(gfp)) && 2235 cpuset_nodemask_valid_mems_allowed(&mpol->nodes))) 2236 return &mpol->nodes; 2237 #endif 2238 return NULL; 2239 } 2240 2241 /* 2242 * Increase the hugetlb pool such that it can accommodate a reservation 2243 * of size 'delta'. 2244 */ 2245 static int gather_surplus_pages(struct hstate *h, long delta) 2246 __must_hold(&hugetlb_lock) 2247 { 2248 LIST_HEAD(surplus_list); 2249 struct folio *folio, *tmp; 2250 int ret; 2251 long i; 2252 long needed, allocated; 2253 bool alloc_ok = true; 2254 nodemask_t *mbind_nodemask, alloc_nodemask; 2255 2256 mbind_nodemask = policy_mbind_nodemask(htlb_alloc_mask(h)); 2257 if (mbind_nodemask) 2258 nodes_and(alloc_nodemask, *mbind_nodemask, cpuset_current_mems_allowed); 2259 else 2260 alloc_nodemask = cpuset_current_mems_allowed; 2261 2262 lockdep_assert_held(&hugetlb_lock); 2263 needed = (h->resv_huge_pages + delta) - h->free_huge_pages; 2264 if (needed <= 0) { 2265 h->resv_huge_pages += delta; 2266 return 0; 2267 } 2268 2269 allocated = 0; 2270 2271 ret = -ENOMEM; 2272 retry: 2273 spin_unlock_irq(&hugetlb_lock); 2274 for (i = 0; i < needed; i++) { 2275 folio = NULL; 2276 2277 /* 2278 * It is okay to use NUMA_NO_NODE because we use numa_mem_id() 2279 * down the road to pick the current node if that is the case. 2280 */ 2281 folio = alloc_surplus_hugetlb_folio(h, htlb_alloc_mask(h), 2282 NUMA_NO_NODE, &alloc_nodemask); 2283 if (!folio) { 2284 alloc_ok = false; 2285 break; 2286 } 2287 list_add(&folio->lru, &surplus_list); 2288 cond_resched(); 2289 } 2290 allocated += i; 2291 2292 /* 2293 * After retaking hugetlb_lock, we need to recalculate 'needed' 2294 * because either resv_huge_pages or free_huge_pages may have changed. 2295 */ 2296 spin_lock_irq(&hugetlb_lock); 2297 needed = (h->resv_huge_pages + delta) - 2298 (h->free_huge_pages + allocated); 2299 if (needed > 0) { 2300 if (alloc_ok) 2301 goto retry; 2302 /* 2303 * We were not able to allocate enough pages to 2304 * satisfy the entire reservation so we free what 2305 * we've allocated so far. 2306 */ 2307 goto free; 2308 } 2309 /* 2310 * The surplus_list now contains _at_least_ the number of extra pages 2311 * needed to accommodate the reservation. Add the appropriate number 2312 * of pages to the hugetlb pool and free the extras back to the buddy 2313 * allocator. Commit the entire reservation here to prevent another 2314 * process from stealing the pages as they are added to the pool but 2315 * before they are reserved. 2316 */ 2317 needed += allocated; 2318 h->resv_huge_pages += delta; 2319 ret = 0; 2320 2321 /* Free the needed pages to the hugetlb pool */ 2322 list_for_each_entry_safe(folio, tmp, &surplus_list, lru) { 2323 if ((--needed) < 0) 2324 break; 2325 /* Add the page to the hugetlb allocator */ 2326 enqueue_hugetlb_folio(h, folio); 2327 } 2328 free: 2329 spin_unlock_irq(&hugetlb_lock); 2330 2331 /* 2332 * Free unnecessary surplus pages to the buddy allocator. 2333 * Pages have no ref count, call free_huge_folio directly. 2334 */ 2335 list_for_each_entry_safe(folio, tmp, &surplus_list, lru) 2336 free_huge_folio(folio); 2337 spin_lock_irq(&hugetlb_lock); 2338 2339 return ret; 2340 } 2341 2342 /* 2343 * This routine has two main purposes: 2344 * 1) Decrement the reservation count (resv_huge_pages) by the value passed 2345 * in unused_resv_pages. This corresponds to the prior adjustments made 2346 * to the associated reservation map. 2347 * 2) Free any unused surplus pages that may have been allocated to satisfy 2348 * the reservation. As many as unused_resv_pages may be freed. 2349 */ 2350 static void return_unused_surplus_pages(struct hstate *h, 2351 unsigned long unused_resv_pages) 2352 { 2353 unsigned long nr_pages; 2354 LIST_HEAD(page_list); 2355 2356 lockdep_assert_held(&hugetlb_lock); 2357 /* Uncommit the reservation */ 2358 h->resv_huge_pages -= unused_resv_pages; 2359 2360 if (hstate_is_gigantic_no_runtime(h)) 2361 goto out; 2362 2363 /* 2364 * Part (or even all) of the reservation could have been backed 2365 * by pre-allocated pages. Only free surplus pages. 2366 */ 2367 nr_pages = min(unused_resv_pages, h->surplus_huge_pages); 2368 2369 /* 2370 * We want to release as many surplus pages as possible, spread 2371 * evenly across all nodes with memory. Iterate across these nodes 2372 * until we can no longer free unreserved surplus pages. This occurs 2373 * when the nodes with surplus pages have no free pages. 2374 * remove_pool_hugetlb_folio() will balance the freed pages across the 2375 * on-line nodes with memory and will handle the hstate accounting. 2376 */ 2377 while (nr_pages--) { 2378 struct folio *folio; 2379 2380 folio = remove_pool_hugetlb_folio(h, &node_states[N_MEMORY], 1); 2381 if (!folio) 2382 goto out; 2383 2384 list_add(&folio->lru, &page_list); 2385 } 2386 2387 out: 2388 spin_unlock_irq(&hugetlb_lock); 2389 update_and_free_pages_bulk(h, &page_list); 2390 spin_lock_irq(&hugetlb_lock); 2391 } 2392 2393 2394 /* 2395 * vma_needs_reservation, vma_commit_reservation and vma_end_reservation 2396 * are used by the huge page allocation routines to manage reservations. 2397 * 2398 * vma_needs_reservation is called to determine if the huge page at addr 2399 * within the vma has an associated reservation. If a reservation is 2400 * needed, the value 1 is returned. The caller is then responsible for 2401 * managing the global reservation and subpool usage counts. After 2402 * the huge page has been allocated, vma_commit_reservation is called 2403 * to add the page to the reservation map. If the page allocation fails, 2404 * the reservation must be ended instead of committed. vma_end_reservation 2405 * is called in such cases. 2406 * 2407 * In the normal case, vma_commit_reservation returns the same value 2408 * as the preceding vma_needs_reservation call. The only time this 2409 * is not the case is if a reserve map was changed between calls. It 2410 * is the responsibility of the caller to notice the difference and 2411 * take appropriate action. 2412 * 2413 * vma_add_reservation is used in error paths where a reservation must 2414 * be restored when a newly allocated huge page must be freed. It is 2415 * to be called after calling vma_needs_reservation to determine if a 2416 * reservation exists. 2417 * 2418 * vma_del_reservation is used in error paths where an entry in the reserve 2419 * map was created during huge page allocation and must be removed. It is to 2420 * be called after calling vma_needs_reservation to determine if a reservation 2421 * exists. 2422 */ 2423 enum vma_resv_mode { 2424 VMA_NEEDS_RESV, 2425 VMA_COMMIT_RESV, 2426 VMA_END_RESV, 2427 VMA_ADD_RESV, 2428 VMA_DEL_RESV, 2429 }; 2430 static long __vma_reservation_common(struct hstate *h, 2431 struct vm_area_struct *vma, unsigned long addr, 2432 enum vma_resv_mode mode) 2433 { 2434 struct resv_map *resv; 2435 pgoff_t idx; 2436 long ret; 2437 long dummy_out_regions_needed; 2438 2439 resv = vma_resv_map(vma); 2440 if (!resv) 2441 return 1; 2442 2443 idx = vma_hugecache_offset(h, vma, addr); 2444 switch (mode) { 2445 case VMA_NEEDS_RESV: 2446 ret = region_chg(resv, idx, idx + 1, &dummy_out_regions_needed); 2447 /* We assume that vma_reservation_* routines always operate on 2448 * 1 page, and that adding to resv map a 1 page entry can only 2449 * ever require 1 region. 2450 */ 2451 VM_BUG_ON(dummy_out_regions_needed != 1); 2452 break; 2453 case VMA_COMMIT_RESV: 2454 ret = region_add(resv, idx, idx + 1, 1, NULL, NULL); 2455 /* region_add calls of range 1 should never fail. */ 2456 VM_BUG_ON(ret < 0); 2457 break; 2458 case VMA_END_RESV: 2459 region_abort(resv, idx, idx + 1, 1); 2460 ret = 0; 2461 break; 2462 case VMA_ADD_RESV: 2463 if (vma->vm_flags & VM_MAYSHARE) { 2464 ret = region_add(resv, idx, idx + 1, 1, NULL, NULL); 2465 /* region_add calls of range 1 should never fail. */ 2466 VM_BUG_ON(ret < 0); 2467 } else { 2468 region_abort(resv, idx, idx + 1, 1); 2469 ret = region_del(resv, idx, idx + 1); 2470 } 2471 break; 2472 case VMA_DEL_RESV: 2473 if (vma->vm_flags & VM_MAYSHARE) { 2474 region_abort(resv, idx, idx + 1, 1); 2475 ret = region_del(resv, idx, idx + 1); 2476 } else { 2477 ret = region_add(resv, idx, idx + 1, 1, NULL, NULL); 2478 /* region_add calls of range 1 should never fail. */ 2479 VM_BUG_ON(ret < 0); 2480 } 2481 break; 2482 default: 2483 BUG(); 2484 } 2485 2486 if (vma->vm_flags & VM_MAYSHARE || mode == VMA_DEL_RESV) 2487 return ret; 2488 /* 2489 * We know private mapping must have HPAGE_RESV_OWNER set. 2490 * 2491 * In most cases, reserves always exist for private mappings. 2492 * However, a file associated with mapping could have been 2493 * hole punched or truncated after reserves were consumed. 2494 * As subsequent fault on such a range will not use reserves. 2495 * Subtle - The reserve map for private mappings has the 2496 * opposite meaning than that of shared mappings. If NO 2497 * entry is in the reserve map, it means a reservation exists. 2498 * If an entry exists in the reserve map, it means the 2499 * reservation has already been consumed. As a result, the 2500 * return value of this routine is the opposite of the 2501 * value returned from reserve map manipulation routines above. 2502 */ 2503 if (ret > 0) 2504 return 0; 2505 if (ret == 0) 2506 return 1; 2507 return ret; 2508 } 2509 2510 static long vma_needs_reservation(struct hstate *h, 2511 struct vm_area_struct *vma, unsigned long addr) 2512 { 2513 return __vma_reservation_common(h, vma, addr, VMA_NEEDS_RESV); 2514 } 2515 2516 static long vma_commit_reservation(struct hstate *h, 2517 struct vm_area_struct *vma, unsigned long addr) 2518 { 2519 return __vma_reservation_common(h, vma, addr, VMA_COMMIT_RESV); 2520 } 2521 2522 static void vma_end_reservation(struct hstate *h, 2523 struct vm_area_struct *vma, unsigned long addr) 2524 { 2525 (void)__vma_reservation_common(h, vma, addr, VMA_END_RESV); 2526 } 2527 2528 static long vma_add_reservation(struct hstate *h, 2529 struct vm_area_struct *vma, unsigned long addr) 2530 { 2531 return __vma_reservation_common(h, vma, addr, VMA_ADD_RESV); 2532 } 2533 2534 static long vma_del_reservation(struct hstate *h, 2535 struct vm_area_struct *vma, unsigned long addr) 2536 { 2537 return __vma_reservation_common(h, vma, addr, VMA_DEL_RESV); 2538 } 2539 2540 /* 2541 * This routine is called to restore reservation information on error paths. 2542 * It should ONLY be called for folios allocated via alloc_hugetlb_folio(), 2543 * and the hugetlb mutex should remain held when calling this routine. 2544 * 2545 * It handles two specific cases: 2546 * 1) A reservation was in place and the folio consumed the reservation. 2547 * hugetlb_restore_reserve is set in the folio. 2548 * 2) No reservation was in place for the page, so hugetlb_restore_reserve is 2549 * not set. However, alloc_hugetlb_folio always updates the reserve map. 2550 * 2551 * In case 1, free_huge_folio later in the error path will increment the 2552 * global reserve count. But, free_huge_folio does not have enough context 2553 * to adjust the reservation map. This case deals primarily with private 2554 * mappings. Adjust the reserve map here to be consistent with global 2555 * reserve count adjustments to be made by free_huge_folio. Make sure the 2556 * reserve map indicates there is a reservation present. 2557 * 2558 * In case 2, simply undo reserve map modifications done by alloc_hugetlb_folio. 2559 */ 2560 void restore_reserve_on_error(struct hstate *h, struct vm_area_struct *vma, 2561 unsigned long address, struct folio *folio) 2562 { 2563 long rc = vma_needs_reservation(h, vma, address); 2564 2565 if (folio_test_hugetlb_restore_reserve(folio)) { 2566 if (unlikely(rc < 0)) 2567 /* 2568 * Rare out of memory condition in reserve map 2569 * manipulation. Clear hugetlb_restore_reserve so 2570 * that global reserve count will not be incremented 2571 * by free_huge_folio. This will make it appear 2572 * as though the reservation for this folio was 2573 * consumed. This may prevent the task from 2574 * faulting in the folio at a later time. This 2575 * is better than inconsistent global huge page 2576 * accounting of reserve counts. 2577 */ 2578 folio_clear_hugetlb_restore_reserve(folio); 2579 else if (rc) 2580 (void)vma_add_reservation(h, vma, address); 2581 else 2582 vma_end_reservation(h, vma, address); 2583 } else { 2584 if (!rc) { 2585 /* 2586 * This indicates there is an entry in the reserve map 2587 * not added by alloc_hugetlb_folio. We know it was added 2588 * before the alloc_hugetlb_folio call, otherwise 2589 * hugetlb_restore_reserve would be set on the folio. 2590 * Remove the entry so that a subsequent allocation 2591 * does not consume a reservation. 2592 */ 2593 rc = vma_del_reservation(h, vma, address); 2594 if (rc < 0) 2595 /* 2596 * VERY rare out of memory condition. Since 2597 * we can not delete the entry, set 2598 * hugetlb_restore_reserve so that the reserve 2599 * count will be incremented when the folio 2600 * is freed. This reserve will be consumed 2601 * on a subsequent allocation. 2602 */ 2603 folio_set_hugetlb_restore_reserve(folio); 2604 } else if (rc < 0) { 2605 /* 2606 * Rare out of memory condition from 2607 * vma_needs_reservation call. Memory allocation is 2608 * only attempted if a new entry is needed. Therefore, 2609 * this implies there is not an entry in the 2610 * reserve map. 2611 * 2612 * For shared mappings, no entry in the map indicates 2613 * no reservation. We are done. 2614 */ 2615 if (!(vma->vm_flags & VM_MAYSHARE)) 2616 /* 2617 * For private mappings, no entry indicates 2618 * a reservation is present. Since we can 2619 * not add an entry, set hugetlb_restore_reserve 2620 * on the folio so reserve count will be 2621 * incremented when freed. This reserve will 2622 * be consumed on a subsequent allocation. 2623 */ 2624 folio_set_hugetlb_restore_reserve(folio); 2625 } else { 2626 /* 2627 * No reservation present, do nothing 2628 */ 2629 vma_end_reservation(h, vma, address); 2630 } 2631 } 2632 } 2633 2634 /* 2635 * alloc_and_dissolve_hugetlb_folio - Allocate a new folio and dissolve 2636 * the old one 2637 * @old_folio: Old folio to dissolve 2638 * @list: List to isolate the page in case we need to 2639 * Returns 0 on success, otherwise negated error. 2640 */ 2641 static int alloc_and_dissolve_hugetlb_folio(struct folio *old_folio, 2642 struct list_head *list) 2643 { 2644 gfp_t gfp_mask; 2645 struct hstate *h; 2646 int nid = folio_nid(old_folio); 2647 struct folio *new_folio = NULL; 2648 int ret = 0; 2649 2650 retry: 2651 /* 2652 * The old_folio might have been dissolved from under our feet, so make sure 2653 * to carefully check the state under the lock. 2654 */ 2655 spin_lock_irq(&hugetlb_lock); 2656 if (!folio_test_hugetlb(old_folio)) { 2657 /* 2658 * Freed from under us. Drop new_folio too. 2659 */ 2660 goto free_new; 2661 } else if (folio_ref_count(old_folio)) { 2662 bool isolated; 2663 2664 /* 2665 * Someone has grabbed the folio, try to isolate it here. 2666 * Fail with -EBUSY if not possible. 2667 */ 2668 spin_unlock_irq(&hugetlb_lock); 2669 isolated = folio_isolate_hugetlb(old_folio, list); 2670 ret = isolated ? 0 : -EBUSY; 2671 spin_lock_irq(&hugetlb_lock); 2672 goto free_new; 2673 } else if (!folio_test_hugetlb_freed(old_folio)) { 2674 /* 2675 * Folio's refcount is 0 but it has not been enqueued in the 2676 * freelist yet. Race window is small, so we can succeed here if 2677 * we retry. 2678 */ 2679 spin_unlock_irq(&hugetlb_lock); 2680 cond_resched(); 2681 goto retry; 2682 } else { 2683 h = folio_hstate(old_folio); 2684 if (!new_folio) { 2685 spin_unlock_irq(&hugetlb_lock); 2686 gfp_mask = htlb_alloc_mask(h) | __GFP_THISNODE; 2687 new_folio = alloc_fresh_hugetlb_folio(h, gfp_mask, 2688 nid, NULL); 2689 if (!new_folio) 2690 return -ENOMEM; 2691 goto retry; 2692 } 2693 2694 /* 2695 * Ok, old_folio is still a genuine free hugepage. Remove it from 2696 * the freelist and decrease the counters. These will be 2697 * incremented again when calling account_new_hugetlb_folio() 2698 * and enqueue_hugetlb_folio() for new_folio. The counters will 2699 * remain stable since this happens under the lock. 2700 */ 2701 remove_hugetlb_folio(h, old_folio, false); 2702 2703 /* 2704 * Ref count on new_folio is already zero as it was dropped 2705 * earlier. It can be directly added to the pool free list. 2706 */ 2707 account_new_hugetlb_folio(h, new_folio); 2708 enqueue_hugetlb_folio(h, new_folio); 2709 2710 /* 2711 * Folio has been replaced, we can safely free the old one. 2712 */ 2713 spin_unlock_irq(&hugetlb_lock); 2714 update_and_free_hugetlb_folio(h, old_folio, false); 2715 } 2716 2717 return ret; 2718 2719 free_new: 2720 spin_unlock_irq(&hugetlb_lock); 2721 if (new_folio) 2722 update_and_free_hugetlb_folio(h, new_folio, false); 2723 2724 return ret; 2725 } 2726 2727 int isolate_or_dissolve_huge_folio(struct folio *folio, struct list_head *list) 2728 { 2729 int ret = -EBUSY; 2730 2731 /* Not to disrupt normal path by vainly holding hugetlb_lock */ 2732 if (!folio_test_hugetlb(folio)) 2733 return 0; 2734 2735 /* 2736 * Fence off gigantic pages as there is a cyclic dependency between 2737 * alloc_contig_range and them. Return -ENOMEM as this has the effect 2738 * of bailing out right away without further retrying. 2739 */ 2740 if (order_is_gigantic(folio_order(folio))) 2741 return -ENOMEM; 2742 2743 if (folio_ref_count(folio) && folio_isolate_hugetlb(folio, list)) 2744 ret = 0; 2745 else if (!folio_ref_count(folio)) 2746 ret = alloc_and_dissolve_hugetlb_folio(folio, list); 2747 2748 return ret; 2749 } 2750 2751 /* 2752 * replace_free_hugepage_folios - Replace free hugepage folios in a given pfn 2753 * range with new folios. 2754 * @start_pfn: start pfn of the given pfn range 2755 * @end_pfn: end pfn of the given pfn range 2756 * Returns 0 on success, otherwise negated error. 2757 */ 2758 int replace_free_hugepage_folios(unsigned long start_pfn, unsigned long end_pfn) 2759 { 2760 unsigned long nr = 0; 2761 struct page *page; 2762 struct hstate *h; 2763 LIST_HEAD(list); 2764 int ret = 0; 2765 2766 /* Avoid pfn iterations if no free non-gigantic huge pages */ 2767 for_each_hstate(h) { 2768 if (hstate_is_gigantic(h)) 2769 continue; 2770 2771 nr += h->free_huge_pages; 2772 if (nr) 2773 break; 2774 } 2775 2776 if (!nr) 2777 return 0; 2778 2779 while (start_pfn < end_pfn) { 2780 page = pfn_to_page(start_pfn); 2781 nr = 1; 2782 2783 if (PageHuge(page) || PageCompound(page)) { 2784 struct folio *folio = page_folio(page); 2785 2786 nr = folio_nr_pages(folio) - folio_page_idx(folio, page); 2787 2788 /* 2789 * Don't disrupt normal path by vainly holding 2790 * hugetlb_lock 2791 */ 2792 if (folio_test_hugetlb(folio) && !folio_ref_count(folio)) { 2793 if (order_is_gigantic(folio_order(folio))) { 2794 ret = -ENOMEM; 2795 break; 2796 } 2797 2798 ret = alloc_and_dissolve_hugetlb_folio(folio, &list); 2799 if (ret) 2800 break; 2801 2802 putback_movable_pages(&list); 2803 } 2804 } else if (PageBuddy(page)) { 2805 /* 2806 * Buddy order check without zone lock is unsafe and 2807 * the order is maybe invalid, but race should be 2808 * small, and the worst thing is skipping free hugetlb. 2809 */ 2810 const unsigned int order = buddy_order_unsafe(page); 2811 2812 if (order <= MAX_PAGE_ORDER) 2813 nr = 1UL << order; 2814 } 2815 start_pfn += nr; 2816 } 2817 2818 return ret; 2819 } 2820 2821 void wait_for_freed_hugetlb_folios(void) 2822 { 2823 if (llist_empty(&hpage_freelist)) 2824 return; 2825 2826 flush_work(&free_hpage_work); 2827 } 2828 2829 typedef enum { 2830 /* 2831 * For either 0/1: we checked the per-vma resv map, and one resv 2832 * count either can be reused (0), or an extra needed (1). 2833 */ 2834 MAP_CHG_REUSE = 0, 2835 MAP_CHG_NEEDED = 1, 2836 /* 2837 * Cannot use per-vma resv count can be used, hence a new resv 2838 * count is enforced. 2839 * 2840 * NOTE: This is mostly identical to MAP_CHG_NEEDED, except 2841 * that currently vma_needs_reservation() has an unwanted side 2842 * effect to either use end() or commit() to complete the 2843 * transaction. Hence it needs to differentiate from NEEDED. 2844 */ 2845 MAP_CHG_ENFORCED = 2, 2846 } map_chg_state; 2847 2848 /* 2849 * NOTE! "cow_from_owner" represents a very hacky usage only used in CoW 2850 * faults of hugetlb private mappings on top of a non-page-cache folio (in 2851 * which case even if there's a private vma resv map it won't cover such 2852 * allocation). New call sites should (probably) never set it to true!! 2853 * When it's set, the allocation will bypass all vma level reservations. 2854 */ 2855 struct folio *alloc_hugetlb_folio(struct vm_area_struct *vma, 2856 unsigned long addr, bool cow_from_owner) 2857 { 2858 struct hugepage_subpool *spool = subpool_vma(vma); 2859 struct hstate *h = hstate_vma(vma); 2860 struct folio *folio; 2861 long retval, gbl_chg, gbl_reserve; 2862 map_chg_state map_chg; 2863 int ret, idx; 2864 struct hugetlb_cgroup *h_cg = NULL; 2865 struct hugetlb_cgroup *h_cg_rsvd = NULL; 2866 gfp_t gfp = htlb_alloc_mask(h) | __GFP_RETRY_MAYFAIL; 2867 2868 idx = hstate_index(h); 2869 2870 /* Whether we need a separate per-vma reservation? */ 2871 if (cow_from_owner) { 2872 /* 2873 * Special case! Since it's a CoW on top of a reserved 2874 * page, the private resv map doesn't count. So it cannot 2875 * consume the per-vma resv map even if it's reserved. 2876 */ 2877 map_chg = MAP_CHG_ENFORCED; 2878 } else { 2879 /* 2880 * Examine the region/reserve map to determine if the process 2881 * has a reservation for the page to be allocated. A return 2882 * code of zero indicates a reservation exists (no change). 2883 */ 2884 retval = vma_needs_reservation(h, vma, addr); 2885 if (retval < 0) 2886 return ERR_PTR(-ENOMEM); 2887 map_chg = retval ? MAP_CHG_NEEDED : MAP_CHG_REUSE; 2888 } 2889 2890 /* 2891 * Whether we need a separate global reservation? 2892 * 2893 * Processes that did not create the mapping will have no 2894 * reserves as indicated by the region/reserve map. Check 2895 * that the allocation will not exceed the subpool limit. 2896 * Or if it can get one from the pool reservation directly. 2897 */ 2898 if (map_chg) { 2899 gbl_chg = hugepage_subpool_get_pages(spool, 1); 2900 if (gbl_chg < 0) 2901 goto out_end_reservation; 2902 } else { 2903 /* 2904 * If we have the vma reservation ready, no need for extra 2905 * global reservation. 2906 */ 2907 gbl_chg = 0; 2908 } 2909 2910 /* 2911 * If this allocation is not consuming a per-vma reservation, 2912 * charge the hugetlb cgroup now. 2913 */ 2914 if (map_chg) { 2915 ret = hugetlb_cgroup_charge_cgroup_rsvd( 2916 idx, pages_per_huge_page(h), &h_cg_rsvd); 2917 if (ret) 2918 goto out_subpool_put; 2919 } 2920 2921 ret = hugetlb_cgroup_charge_cgroup(idx, pages_per_huge_page(h), &h_cg); 2922 if (ret) 2923 goto out_uncharge_cgroup_reservation; 2924 2925 spin_lock_irq(&hugetlb_lock); 2926 /* 2927 * glb_chg is passed to indicate whether or not a page must be taken 2928 * from the global free pool (global change). gbl_chg == 0 indicates 2929 * a reservation exists for the allocation. 2930 */ 2931 folio = dequeue_hugetlb_folio_vma(h, vma, addr, gbl_chg); 2932 if (!folio) { 2933 spin_unlock_irq(&hugetlb_lock); 2934 folio = alloc_buddy_hugetlb_folio_with_mpol(h, vma, addr); 2935 if (!folio) 2936 goto out_uncharge_cgroup; 2937 spin_lock_irq(&hugetlb_lock); 2938 list_add(&folio->lru, &h->hugepage_activelist); 2939 folio_ref_unfreeze(folio, 1); 2940 /* Fall through */ 2941 } 2942 2943 /* 2944 * Either dequeued or buddy-allocated folio needs to add special 2945 * mark to the folio when it consumes a global reservation. 2946 */ 2947 if (!gbl_chg) { 2948 folio_set_hugetlb_restore_reserve(folio); 2949 h->resv_huge_pages--; 2950 } 2951 2952 hugetlb_cgroup_commit_charge(idx, pages_per_huge_page(h), h_cg, folio); 2953 /* If allocation is not consuming a reservation, also store the 2954 * hugetlb_cgroup pointer on the page. 2955 */ 2956 if (map_chg) { 2957 hugetlb_cgroup_commit_charge_rsvd(idx, pages_per_huge_page(h), 2958 h_cg_rsvd, folio); 2959 } 2960 2961 spin_unlock_irq(&hugetlb_lock); 2962 2963 hugetlb_set_folio_subpool(folio, spool); 2964 2965 if (map_chg != MAP_CHG_ENFORCED) { 2966 /* commit() is only needed if the map_chg is not enforced */ 2967 retval = vma_commit_reservation(h, vma, addr); 2968 /* 2969 * Check for possible race conditions. When it happens.. 2970 * The page was added to the reservation map between 2971 * vma_needs_reservation and vma_commit_reservation. 2972 * This indicates a race with hugetlb_reserve_pages. 2973 * Adjust for the subpool count incremented above AND 2974 * in hugetlb_reserve_pages for the same page. Also, 2975 * the reservation count added in hugetlb_reserve_pages 2976 * no longer applies. 2977 */ 2978 if (unlikely(map_chg == MAP_CHG_NEEDED && retval == 0)) { 2979 long rsv_adjust; 2980 2981 rsv_adjust = hugepage_subpool_put_pages(spool, 1); 2982 hugetlb_acct_memory(h, -rsv_adjust); 2983 spin_lock_irq(&hugetlb_lock); 2984 hugetlb_cgroup_uncharge_folio_rsvd( 2985 hstate_index(h), pages_per_huge_page(h), folio); 2986 spin_unlock_irq(&hugetlb_lock); 2987 } 2988 } 2989 2990 ret = mem_cgroup_charge_hugetlb(folio, gfp); 2991 /* 2992 * Unconditionally increment NR_HUGETLB here. If it turns out that 2993 * mem_cgroup_charge_hugetlb failed, then immediately free the page and 2994 * decrement NR_HUGETLB. 2995 */ 2996 lruvec_stat_mod_folio(folio, NR_HUGETLB, pages_per_huge_page(h)); 2997 2998 if (ret == -ENOMEM) { 2999 free_huge_folio(folio); 3000 return ERR_PTR(-ENOMEM); 3001 } 3002 3003 return folio; 3004 3005 out_uncharge_cgroup: 3006 hugetlb_cgroup_uncharge_cgroup(idx, pages_per_huge_page(h), h_cg); 3007 out_uncharge_cgroup_reservation: 3008 if (map_chg) 3009 hugetlb_cgroup_uncharge_cgroup_rsvd(idx, pages_per_huge_page(h), 3010 h_cg_rsvd); 3011 out_subpool_put: 3012 /* 3013 * put page to subpool iff the quota of subpool's rsv_hpages is used 3014 * during hugepage_subpool_get_pages. 3015 */ 3016 if (map_chg && !gbl_chg) { 3017 gbl_reserve = hugepage_subpool_put_pages(spool, 1); 3018 hugetlb_acct_memory(h, -gbl_reserve); 3019 } 3020 3021 3022 out_end_reservation: 3023 if (map_chg != MAP_CHG_ENFORCED) 3024 vma_end_reservation(h, vma, addr); 3025 return ERR_PTR(-ENOSPC); 3026 } 3027 3028 static __init void *alloc_bootmem(struct hstate *h, int nid, bool node_exact) 3029 { 3030 struct huge_bootmem_page *m; 3031 int listnode = nid; 3032 3033 if (hugetlb_early_cma(h)) 3034 m = hugetlb_cma_alloc_bootmem(h, &listnode, node_exact); 3035 else { 3036 if (node_exact) 3037 m = memblock_alloc_exact_nid_raw(huge_page_size(h), 3038 huge_page_size(h), 0, 3039 MEMBLOCK_ALLOC_ACCESSIBLE, nid); 3040 else { 3041 m = memblock_alloc_try_nid_raw(huge_page_size(h), 3042 huge_page_size(h), 0, 3043 MEMBLOCK_ALLOC_ACCESSIBLE, nid); 3044 /* 3045 * For pre-HVO to work correctly, pages need to be on 3046 * the list for the node they were actually allocated 3047 * from. That node may be different in the case of 3048 * fallback by memblock_alloc_try_nid_raw. So, 3049 * extract the actual node first. 3050 */ 3051 if (m) 3052 listnode = early_pfn_to_nid(PHYS_PFN(__pa(m))); 3053 } 3054 3055 if (m) { 3056 m->flags = 0; 3057 m->cma = NULL; 3058 } 3059 } 3060 3061 if (m) { 3062 /* 3063 * Use the beginning of the huge page to store the 3064 * huge_bootmem_page struct (until gather_bootmem 3065 * puts them into the mem_map). 3066 * 3067 * Put them into a private list first because mem_map 3068 * is not up yet. 3069 */ 3070 INIT_LIST_HEAD(&m->list); 3071 list_add(&m->list, &huge_boot_pages[listnode]); 3072 m->hstate = h; 3073 } 3074 3075 return m; 3076 } 3077 3078 int alloc_bootmem_huge_page(struct hstate *h, int nid) 3079 __attribute__ ((weak, alias("__alloc_bootmem_huge_page"))); 3080 int __alloc_bootmem_huge_page(struct hstate *h, int nid) 3081 { 3082 struct huge_bootmem_page *m = NULL; /* initialize for clang */ 3083 int nr_nodes, node = nid; 3084 3085 /* do node specific alloc */ 3086 if (nid != NUMA_NO_NODE) { 3087 m = alloc_bootmem(h, node, true); 3088 if (!m) 3089 return 0; 3090 goto found; 3091 } 3092 3093 /* allocate from next node when distributing huge pages */ 3094 for_each_node_mask_to_alloc(&h->next_nid_to_alloc, nr_nodes, node, 3095 &hugetlb_bootmem_nodes) { 3096 m = alloc_bootmem(h, node, false); 3097 if (!m) 3098 return 0; 3099 goto found; 3100 } 3101 3102 found: 3103 3104 /* 3105 * Only initialize the head struct page in memmap_init_reserved_pages, 3106 * rest of the struct pages will be initialized by the HugeTLB 3107 * subsystem itself. 3108 * The head struct page is used to get folio information by the HugeTLB 3109 * subsystem like zone id and node id. 3110 */ 3111 memblock_reserved_mark_noinit(__pa((void *)m + PAGE_SIZE), 3112 huge_page_size(h) - PAGE_SIZE); 3113 3114 return 1; 3115 } 3116 3117 /* Initialize [start_page:end_page_number] tail struct pages of a hugepage */ 3118 static void __init hugetlb_folio_init_tail_vmemmap(struct folio *folio, 3119 struct hstate *h, 3120 unsigned long start_page_number, 3121 unsigned long end_page_number) 3122 { 3123 enum zone_type zone = folio_zonenum(folio); 3124 int nid = folio_nid(folio); 3125 struct page *page = folio_page(folio, start_page_number); 3126 unsigned long head_pfn = folio_pfn(folio); 3127 unsigned long pfn, end_pfn = head_pfn + end_page_number; 3128 unsigned int order = huge_page_order(h); 3129 3130 /* 3131 * As we marked all tail pages with memblock_reserved_mark_noinit(), 3132 * we must initialize them ourselves here. 3133 */ 3134 for (pfn = head_pfn + start_page_number; pfn < end_pfn; page++, pfn++) { 3135 __init_single_page(page, pfn, zone, nid); 3136 prep_compound_tail(page, &folio->page, order); 3137 set_page_count(page, 0); 3138 } 3139 } 3140 3141 static void __init hugetlb_folio_init_vmemmap(struct folio *folio, 3142 struct hstate *h, 3143 unsigned long nr_pages) 3144 { 3145 int ret; 3146 3147 /* 3148 * This is an open-coded prep_compound_page() whereby we avoid 3149 * walking pages twice by initializing/preparing+freezing them in the 3150 * same go. 3151 */ 3152 __folio_clear_reserved(folio); 3153 __folio_set_head(folio); 3154 ret = folio_ref_freeze(folio, 1); 3155 VM_BUG_ON(!ret); 3156 hugetlb_folio_init_tail_vmemmap(folio, h, 1, nr_pages); 3157 prep_compound_head(&folio->page, huge_page_order(h)); 3158 } 3159 3160 static bool __init hugetlb_bootmem_page_prehvo(struct huge_bootmem_page *m) 3161 { 3162 return m->flags & HUGE_BOOTMEM_HVO; 3163 } 3164 3165 static bool __init hugetlb_bootmem_page_earlycma(struct huge_bootmem_page *m) 3166 { 3167 return m->flags & HUGE_BOOTMEM_CMA; 3168 } 3169 3170 /* 3171 * memblock-allocated pageblocks might not have the migrate type set 3172 * if marked with the 'noinit' flag. Set it to the default (MIGRATE_MOVABLE) 3173 * here, or MIGRATE_CMA if this was a page allocated through an early CMA 3174 * reservation. 3175 * 3176 * In case of vmemmap optimized folios, the tail vmemmap pages are mapped 3177 * read-only, but that's ok - for sparse vmemmap this does not write to 3178 * the page structure. 3179 */ 3180 static void __init hugetlb_bootmem_init_migratetype(struct folio *folio, 3181 struct hstate *h) 3182 { 3183 unsigned long nr_pages = pages_per_huge_page(h), i; 3184 3185 WARN_ON_ONCE(!pageblock_aligned(folio_pfn(folio))); 3186 3187 for (i = 0; i < nr_pages; i += pageblock_nr_pages) { 3188 if (folio_test_hugetlb_cma(folio)) 3189 init_cma_pageblock(folio_page(folio, i)); 3190 else 3191 init_pageblock_migratetype(folio_page(folio, i), 3192 MIGRATE_MOVABLE, false); 3193 } 3194 } 3195 3196 static void __init prep_and_add_bootmem_folios(struct hstate *h, 3197 struct list_head *folio_list) 3198 { 3199 unsigned long flags; 3200 struct folio *folio, *tmp_f; 3201 3202 /* Send list for bulk vmemmap optimization processing */ 3203 hugetlb_vmemmap_optimize_bootmem_folios(h, folio_list); 3204 3205 list_for_each_entry_safe(folio, tmp_f, folio_list, lru) { 3206 if (!folio_test_hugetlb_vmemmap_optimized(folio)) { 3207 /* 3208 * If HVO fails, initialize all tail struct pages 3209 * We do not worry about potential long lock hold 3210 * time as this is early in boot and there should 3211 * be no contention. 3212 */ 3213 hugetlb_folio_init_tail_vmemmap(folio, h, 3214 HUGETLB_VMEMMAP_RESERVE_PAGES, 3215 pages_per_huge_page(h)); 3216 } 3217 hugetlb_bootmem_init_migratetype(folio, h); 3218 /* Subdivide locks to achieve better parallel performance */ 3219 spin_lock_irqsave(&hugetlb_lock, flags); 3220 account_new_hugetlb_folio(h, folio); 3221 enqueue_hugetlb_folio(h, folio); 3222 spin_unlock_irqrestore(&hugetlb_lock, flags); 3223 } 3224 } 3225 3226 bool __init hugetlb_bootmem_page_zones_valid(int nid, 3227 struct huge_bootmem_page *m) 3228 { 3229 unsigned long start_pfn; 3230 bool valid; 3231 3232 if (m->flags & HUGE_BOOTMEM_ZONES_VALID) { 3233 /* 3234 * Already validated, skip check. 3235 */ 3236 return true; 3237 } 3238 3239 if (hugetlb_bootmem_page_earlycma(m)) { 3240 valid = cma_validate_zones(m->cma); 3241 goto out; 3242 } 3243 3244 start_pfn = virt_to_phys(m) >> PAGE_SHIFT; 3245 3246 valid = !pfn_range_intersects_zones(nid, start_pfn, 3247 pages_per_huge_page(m->hstate)); 3248 out: 3249 if (!valid) 3250 hstate_boot_nrinvalid[hstate_index(m->hstate)]++; 3251 3252 return valid; 3253 } 3254 3255 /* 3256 * Free a bootmem page that was found to be invalid (intersecting with 3257 * multiple zones). 3258 * 3259 * Since it intersects with multiple zones, we can't just do a free 3260 * operation on all pages at once, but instead have to walk all 3261 * pages, freeing them one by one. 3262 */ 3263 static void __init hugetlb_bootmem_free_invalid_page(int nid, struct page *page, 3264 struct hstate *h) 3265 { 3266 unsigned long npages = pages_per_huge_page(h); 3267 unsigned long pfn; 3268 3269 while (npages--) { 3270 pfn = page_to_pfn(page); 3271 __init_page_from_nid(pfn, nid); 3272 free_reserved_page(page); 3273 page++; 3274 } 3275 } 3276 3277 /* 3278 * Put bootmem huge pages into the standard lists after mem_map is up. 3279 * Note: This only applies to gigantic (order > MAX_PAGE_ORDER) pages. 3280 */ 3281 static void __init gather_bootmem_prealloc_node(unsigned long nid) 3282 { 3283 LIST_HEAD(folio_list); 3284 struct huge_bootmem_page *m, *tm; 3285 struct hstate *h = NULL, *prev_h = NULL; 3286 3287 list_for_each_entry_safe(m, tm, &huge_boot_pages[nid], list) { 3288 struct page *page = virt_to_page(m); 3289 struct folio *folio = (void *)page; 3290 3291 h = m->hstate; 3292 if (!hugetlb_bootmem_page_zones_valid(nid, m)) { 3293 /* 3294 * Can't use this page. Initialize the 3295 * page structures if that hasn't already 3296 * been done, and give them to the page 3297 * allocator. 3298 */ 3299 hugetlb_bootmem_free_invalid_page(nid, page, h); 3300 continue; 3301 } 3302 3303 /* 3304 * It is possible to have multiple huge page sizes (hstates) 3305 * in this list. If so, process each size separately. 3306 */ 3307 if (h != prev_h && prev_h != NULL) 3308 prep_and_add_bootmem_folios(prev_h, &folio_list); 3309 prev_h = h; 3310 3311 VM_BUG_ON(!hstate_is_gigantic(h)); 3312 WARN_ON(folio_ref_count(folio) != 1); 3313 3314 hugetlb_folio_init_vmemmap(folio, h, 3315 HUGETLB_VMEMMAP_RESERVE_PAGES); 3316 init_new_hugetlb_folio(folio); 3317 3318 if (hugetlb_bootmem_page_prehvo(m)) 3319 /* 3320 * If pre-HVO was done, just set the 3321 * flag, the HVO code will then skip 3322 * this folio. 3323 */ 3324 folio_set_hugetlb_vmemmap_optimized(folio); 3325 3326 if (hugetlb_bootmem_page_earlycma(m)) 3327 folio_set_hugetlb_cma(folio); 3328 3329 list_add(&folio->lru, &folio_list); 3330 3331 /* 3332 * We need to restore the 'stolen' pages to totalram_pages 3333 * in order to fix confusing memory reports from free(1) and 3334 * other side-effects, like CommitLimit going negative. 3335 * 3336 * For CMA pages, this is done in init_cma_pageblock 3337 * (via hugetlb_bootmem_init_migratetype), so skip it here. 3338 */ 3339 if (!folio_test_hugetlb_cma(folio)) 3340 adjust_managed_page_count(page, pages_per_huge_page(h)); 3341 cond_resched(); 3342 } 3343 3344 prep_and_add_bootmem_folios(h, &folio_list); 3345 } 3346 3347 static void __init gather_bootmem_prealloc_parallel(unsigned long start, 3348 unsigned long end, void *arg) 3349 { 3350 int nid; 3351 3352 for (nid = start; nid < end; nid++) 3353 gather_bootmem_prealloc_node(nid); 3354 } 3355 3356 static void __init gather_bootmem_prealloc(void) 3357 { 3358 struct padata_mt_job job = { 3359 .thread_fn = gather_bootmem_prealloc_parallel, 3360 .fn_arg = NULL, 3361 .start = 0, 3362 .size = nr_node_ids, 3363 .align = 1, 3364 .min_chunk = 1, 3365 .max_threads = num_node_state(N_MEMORY), 3366 .numa_aware = true, 3367 }; 3368 3369 padata_do_multithreaded(&job); 3370 } 3371 3372 static void __init hugetlb_hstate_alloc_pages_onenode(struct hstate *h, int nid) 3373 { 3374 unsigned long i; 3375 char buf[32]; 3376 LIST_HEAD(folio_list); 3377 3378 for (i = 0; i < h->max_huge_pages_node[nid]; ++i) { 3379 if (hstate_is_gigantic(h)) { 3380 if (!alloc_bootmem_huge_page(h, nid)) 3381 break; 3382 } else { 3383 struct folio *folio; 3384 gfp_t gfp_mask = htlb_alloc_mask(h) | __GFP_THISNODE; 3385 3386 folio = only_alloc_fresh_hugetlb_folio(h, gfp_mask, nid, 3387 &node_states[N_MEMORY], NULL); 3388 if (!folio && !list_empty(&folio_list) && 3389 hugetlb_vmemmap_optimizable_size(h)) { 3390 prep_and_add_allocated_folios(h, &folio_list); 3391 INIT_LIST_HEAD(&folio_list); 3392 folio = only_alloc_fresh_hugetlb_folio(h, gfp_mask, nid, 3393 &node_states[N_MEMORY], NULL); 3394 } 3395 if (!folio) 3396 break; 3397 list_add(&folio->lru, &folio_list); 3398 } 3399 cond_resched(); 3400 } 3401 3402 if (!list_empty(&folio_list)) 3403 prep_and_add_allocated_folios(h, &folio_list); 3404 3405 if (i == h->max_huge_pages_node[nid]) 3406 return; 3407 3408 string_get_size(huge_page_size(h), 1, STRING_UNITS_2, buf, 32); 3409 pr_warn("HugeTLB: allocating %u of page size %s failed node%d. Only allocated %lu hugepages.\n", 3410 h->max_huge_pages_node[nid], buf, nid, i); 3411 h->max_huge_pages -= (h->max_huge_pages_node[nid] - i); 3412 h->max_huge_pages_node[nid] = i; 3413 } 3414 3415 static bool __init hugetlb_hstate_alloc_pages_specific_nodes(struct hstate *h) 3416 { 3417 int i; 3418 bool node_specific_alloc = false; 3419 3420 for_each_online_node(i) { 3421 if (h->max_huge_pages_node[i] > 0) { 3422 hugetlb_hstate_alloc_pages_onenode(h, i); 3423 node_specific_alloc = true; 3424 } 3425 } 3426 3427 return node_specific_alloc; 3428 } 3429 3430 static void __init hugetlb_hstate_alloc_pages_errcheck(unsigned long allocated, struct hstate *h) 3431 { 3432 if (allocated < h->max_huge_pages) { 3433 char buf[32]; 3434 3435 string_get_size(huge_page_size(h), 1, STRING_UNITS_2, buf, 32); 3436 pr_warn("HugeTLB: allocating %lu of page size %s failed. Only allocated %lu hugepages.\n", 3437 h->max_huge_pages, buf, allocated); 3438 h->max_huge_pages = allocated; 3439 } 3440 } 3441 3442 static void __init hugetlb_pages_alloc_boot_node(unsigned long start, unsigned long end, void *arg) 3443 { 3444 struct hstate *h = (struct hstate *)arg; 3445 int i, num = end - start; 3446 nodemask_t node_alloc_noretry; 3447 LIST_HEAD(folio_list); 3448 int next_node = first_online_node; 3449 3450 /* Bit mask controlling how hard we retry per-node allocations.*/ 3451 nodes_clear(node_alloc_noretry); 3452 3453 for (i = 0; i < num; ++i) { 3454 struct folio *folio; 3455 3456 if (hugetlb_vmemmap_optimizable_size(h) && 3457 (si_mem_available() == 0) && !list_empty(&folio_list)) { 3458 prep_and_add_allocated_folios(h, &folio_list); 3459 INIT_LIST_HEAD(&folio_list); 3460 } 3461 folio = alloc_pool_huge_folio(h, &node_states[N_MEMORY], 3462 &node_alloc_noretry, &next_node); 3463 if (!folio) 3464 break; 3465 3466 list_move(&folio->lru, &folio_list); 3467 cond_resched(); 3468 } 3469 3470 prep_and_add_allocated_folios(h, &folio_list); 3471 } 3472 3473 static unsigned long __init hugetlb_gigantic_pages_alloc_boot(struct hstate *h) 3474 { 3475 unsigned long i; 3476 3477 for (i = 0; i < h->max_huge_pages; ++i) { 3478 if (!alloc_bootmem_huge_page(h, NUMA_NO_NODE)) 3479 break; 3480 cond_resched(); 3481 } 3482 3483 return i; 3484 } 3485 3486 static unsigned long __init hugetlb_pages_alloc_boot(struct hstate *h) 3487 { 3488 struct padata_mt_job job = { 3489 .fn_arg = h, 3490 .align = 1, 3491 .numa_aware = true 3492 }; 3493 3494 unsigned long jiffies_start; 3495 unsigned long jiffies_end; 3496 unsigned long remaining; 3497 3498 job.thread_fn = hugetlb_pages_alloc_boot_node; 3499 3500 /* 3501 * job.max_threads is 25% of the available cpu threads by default. 3502 * 3503 * On large servers with terabytes of memory, huge page allocation 3504 * can consume a considerably amount of time. 3505 * 3506 * Tests below show how long it takes to allocate 1 TiB of memory with 2MiB huge pages. 3507 * 2MiB huge pages. Using more threads can significantly improve allocation time. 3508 * 3509 * +-----------------------+-------+-------+-------+-------+-------+ 3510 * | threads | 8 | 16 | 32 | 64 | 128 | 3511 * +-----------------------+-------+-------+-------+-------+-------+ 3512 * | skylake 144 cpus | 44s | 22s | 16s | 19s | 20s | 3513 * | cascade lake 192 cpus | 39s | 20s | 11s | 10s | 9s | 3514 * +-----------------------+-------+-------+-------+-------+-------+ 3515 */ 3516 if (hugepage_allocation_threads == 0) { 3517 hugepage_allocation_threads = num_online_cpus() / 4; 3518 hugepage_allocation_threads = max(hugepage_allocation_threads, 1); 3519 } 3520 3521 job.max_threads = hugepage_allocation_threads; 3522 3523 jiffies_start = jiffies; 3524 do { 3525 remaining = h->max_huge_pages - h->nr_huge_pages; 3526 3527 job.start = h->nr_huge_pages; 3528 job.size = remaining; 3529 job.min_chunk = remaining / hugepage_allocation_threads; 3530 padata_do_multithreaded(&job); 3531 3532 if (h->nr_huge_pages == h->max_huge_pages) 3533 break; 3534 3535 /* 3536 * Retry only if the vmemmap optimization might have been able to free 3537 * some memory back to the system. 3538 */ 3539 if (!hugetlb_vmemmap_optimizable(h)) 3540 break; 3541 3542 /* Continue if progress was made in last iteration */ 3543 } while (remaining != (h->max_huge_pages - h->nr_huge_pages)); 3544 3545 jiffies_end = jiffies; 3546 3547 pr_info("HugeTLB: allocation took %dms with hugepage_allocation_threads=%ld\n", 3548 jiffies_to_msecs(jiffies_end - jiffies_start), 3549 hugepage_allocation_threads); 3550 3551 return h->nr_huge_pages; 3552 } 3553 3554 /* 3555 * NOTE: this routine is called in different contexts for gigantic and 3556 * non-gigantic pages. 3557 * - For gigantic pages, this is called early in the boot process and 3558 * pages are allocated from memblock allocated or something similar. 3559 * Gigantic pages are actually added to pools later with the routine 3560 * gather_bootmem_prealloc. 3561 * - For non-gigantic pages, this is called later in the boot process after 3562 * all of mm is up and functional. Pages are allocated from buddy and 3563 * then added to hugetlb pools. 3564 */ 3565 static void __init hugetlb_hstate_alloc_pages(struct hstate *h) 3566 { 3567 unsigned long allocated; 3568 3569 /* 3570 * Skip gigantic hugepages allocation if early CMA 3571 * reservations are not available. 3572 */ 3573 if (hstate_is_gigantic(h) && hugetlb_cma_total_size() && 3574 !hugetlb_early_cma(h)) { 3575 pr_warn_once("HugeTLB: hugetlb_cma is enabled, skip boot time allocation\n"); 3576 return; 3577 } 3578 3579 if (!h->max_huge_pages) 3580 return; 3581 3582 /* do node specific alloc */ 3583 if (hugetlb_hstate_alloc_pages_specific_nodes(h)) 3584 return; 3585 3586 /* below will do all node balanced alloc */ 3587 if (hstate_is_gigantic(h)) 3588 allocated = hugetlb_gigantic_pages_alloc_boot(h); 3589 else 3590 allocated = hugetlb_pages_alloc_boot(h); 3591 3592 hugetlb_hstate_alloc_pages_errcheck(allocated, h); 3593 } 3594 3595 static void __init hugetlb_init_hstates(void) 3596 { 3597 struct hstate *h, *h2; 3598 3599 for_each_hstate(h) { 3600 /* 3601 * Always reset to first_memory_node here, even if 3602 * next_nid_to_alloc was set before - we can't 3603 * reference hugetlb_bootmem_nodes after init, and 3604 * first_memory_node is right for all further allocations. 3605 */ 3606 h->next_nid_to_alloc = first_memory_node; 3607 h->next_nid_to_free = first_memory_node; 3608 3609 /* oversize hugepages were init'ed in early boot */ 3610 if (!hstate_is_gigantic(h)) 3611 hugetlb_hstate_alloc_pages(h); 3612 3613 /* 3614 * Set demote order for each hstate. Note that 3615 * h->demote_order is initially 0. 3616 * - We can not demote gigantic pages if runtime freeing 3617 * is not supported, so skip this. 3618 * - If CMA allocation is possible, we can not demote 3619 * HUGETLB_PAGE_ORDER or smaller size pages. 3620 */ 3621 if (hstate_is_gigantic_no_runtime(h)) 3622 continue; 3623 if (hugetlb_cma_total_size() && h->order <= HUGETLB_PAGE_ORDER) 3624 continue; 3625 for_each_hstate(h2) { 3626 if (h2 == h) 3627 continue; 3628 if (h2->order < h->order && 3629 h2->order > h->demote_order) 3630 h->demote_order = h2->order; 3631 } 3632 } 3633 } 3634 3635 static void __init report_hugepages(void) 3636 { 3637 struct hstate *h; 3638 unsigned long nrinvalid; 3639 3640 for_each_hstate(h) { 3641 char buf[32]; 3642 3643 nrinvalid = hstate_boot_nrinvalid[hstate_index(h)]; 3644 h->max_huge_pages -= nrinvalid; 3645 3646 string_get_size(huge_page_size(h), 1, STRING_UNITS_2, buf, 32); 3647 pr_info("HugeTLB: registered %s page size, pre-allocated %ld pages\n", 3648 buf, h->nr_huge_pages); 3649 if (nrinvalid) 3650 pr_info("HugeTLB: %s page size: %lu invalid page%s discarded\n", 3651 buf, nrinvalid, str_plural(nrinvalid)); 3652 pr_info("HugeTLB: %d KiB vmemmap can be freed for a %s page\n", 3653 hugetlb_vmemmap_optimizable_size(h) / SZ_1K, buf); 3654 } 3655 } 3656 3657 #ifdef CONFIG_HIGHMEM 3658 static void try_to_free_low(struct hstate *h, unsigned long count, 3659 nodemask_t *nodes_allowed) 3660 { 3661 int i; 3662 LIST_HEAD(page_list); 3663 3664 lockdep_assert_held(&hugetlb_lock); 3665 if (hstate_is_gigantic(h)) 3666 return; 3667 3668 /* 3669 * Collect pages to be freed on a list, and free after dropping lock 3670 */ 3671 for_each_node_mask(i, *nodes_allowed) { 3672 struct folio *folio, *next; 3673 struct list_head *freel = &h->hugepage_freelists[i]; 3674 list_for_each_entry_safe(folio, next, freel, lru) { 3675 if (count >= h->nr_huge_pages) 3676 goto out; 3677 if (folio_test_highmem(folio)) 3678 continue; 3679 remove_hugetlb_folio(h, folio, false); 3680 list_add(&folio->lru, &page_list); 3681 } 3682 } 3683 3684 out: 3685 spin_unlock_irq(&hugetlb_lock); 3686 update_and_free_pages_bulk(h, &page_list); 3687 spin_lock_irq(&hugetlb_lock); 3688 } 3689 #else 3690 static inline void try_to_free_low(struct hstate *h, unsigned long count, 3691 nodemask_t *nodes_allowed) 3692 { 3693 } 3694 #endif 3695 3696 /* 3697 * Increment or decrement surplus_huge_pages. Keep node-specific counters 3698 * balanced by operating on them in a round-robin fashion. 3699 * Returns 1 if an adjustment was made. 3700 */ 3701 static int adjust_pool_surplus(struct hstate *h, nodemask_t *nodes_allowed, 3702 int delta) 3703 { 3704 int nr_nodes, node; 3705 3706 lockdep_assert_held(&hugetlb_lock); 3707 VM_BUG_ON(delta != -1 && delta != 1); 3708 3709 if (delta < 0) { 3710 for_each_node_mask_to_alloc(&h->next_nid_to_alloc, nr_nodes, node, nodes_allowed) { 3711 if (h->surplus_huge_pages_node[node]) 3712 goto found; 3713 } 3714 } else { 3715 for_each_node_mask_to_free(h, nr_nodes, node, nodes_allowed) { 3716 if (h->surplus_huge_pages_node[node] < 3717 h->nr_huge_pages_node[node]) 3718 goto found; 3719 } 3720 } 3721 return 0; 3722 3723 found: 3724 h->surplus_huge_pages += delta; 3725 h->surplus_huge_pages_node[node] += delta; 3726 return 1; 3727 } 3728 3729 #define persistent_huge_pages(h) (h->nr_huge_pages - h->surplus_huge_pages) 3730 static int set_max_huge_pages(struct hstate *h, unsigned long count, int nid, 3731 nodemask_t *nodes_allowed) 3732 { 3733 unsigned long persistent_free_count; 3734 unsigned long min_count; 3735 unsigned long allocated; 3736 struct folio *folio; 3737 LIST_HEAD(page_list); 3738 NODEMASK_ALLOC(nodemask_t, node_alloc_noretry, GFP_KERNEL); 3739 3740 /* 3741 * Bit mask controlling how hard we retry per-node allocations. 3742 * If we can not allocate the bit mask, do not attempt to allocate 3743 * the requested huge pages. 3744 */ 3745 if (node_alloc_noretry) 3746 nodes_clear(*node_alloc_noretry); 3747 else 3748 return -ENOMEM; 3749 3750 /* 3751 * resize_lock mutex prevents concurrent adjustments to number of 3752 * pages in hstate via the proc/sysfs interfaces. 3753 */ 3754 mutex_lock(&h->resize_lock); 3755 flush_free_hpage_work(h); 3756 spin_lock_irq(&hugetlb_lock); 3757 3758 /* 3759 * Check for a node specific request. 3760 * Changing node specific huge page count may require a corresponding 3761 * change to the global count. In any case, the passed node mask 3762 * (nodes_allowed) will restrict alloc/free to the specified node. 3763 */ 3764 if (nid != NUMA_NO_NODE) { 3765 unsigned long old_count = count; 3766 3767 count += persistent_huge_pages(h) - 3768 (h->nr_huge_pages_node[nid] - 3769 h->surplus_huge_pages_node[nid]); 3770 /* 3771 * User may have specified a large count value which caused the 3772 * above calculation to overflow. In this case, they wanted 3773 * to allocate as many huge pages as possible. Set count to 3774 * largest possible value to align with their intention. 3775 */ 3776 if (count < old_count) 3777 count = ULONG_MAX; 3778 } 3779 3780 /* 3781 * Gigantic pages runtime allocation depend on the capability for large 3782 * page range allocation. 3783 * If the system does not provide this feature, return an error when 3784 * the user tries to allocate gigantic pages but let the user free the 3785 * boottime allocated gigantic pages. 3786 */ 3787 if (hstate_is_gigantic(h) && !IS_ENABLED(CONFIG_CONTIG_ALLOC)) { 3788 if (count > persistent_huge_pages(h)) { 3789 spin_unlock_irq(&hugetlb_lock); 3790 mutex_unlock(&h->resize_lock); 3791 NODEMASK_FREE(node_alloc_noretry); 3792 return -EINVAL; 3793 } 3794 /* Fall through to decrease pool */ 3795 } 3796 3797 /* 3798 * Increase the pool size 3799 * First take pages out of surplus state. Then make up the 3800 * remaining difference by allocating fresh huge pages. 3801 * 3802 * We might race with alloc_surplus_hugetlb_folio() here and be unable 3803 * to convert a surplus huge page to a normal huge page. That is 3804 * not critical, though, it just means the overall size of the 3805 * pool might be one hugepage larger than it needs to be, but 3806 * within all the constraints specified by the sysctls. 3807 */ 3808 while (h->surplus_huge_pages && count > persistent_huge_pages(h)) { 3809 if (!adjust_pool_surplus(h, nodes_allowed, -1)) 3810 break; 3811 } 3812 3813 allocated = 0; 3814 while (count > (persistent_huge_pages(h) + allocated)) { 3815 /* 3816 * If this allocation races such that we no longer need the 3817 * page, free_huge_folio will handle it by freeing the page 3818 * and reducing the surplus. 3819 */ 3820 spin_unlock_irq(&hugetlb_lock); 3821 3822 /* yield cpu to avoid soft lockup */ 3823 cond_resched(); 3824 3825 folio = alloc_pool_huge_folio(h, nodes_allowed, 3826 node_alloc_noretry, 3827 &h->next_nid_to_alloc); 3828 if (!folio) { 3829 prep_and_add_allocated_folios(h, &page_list); 3830 spin_lock_irq(&hugetlb_lock); 3831 goto out; 3832 } 3833 3834 list_add(&folio->lru, &page_list); 3835 allocated++; 3836 3837 /* Bail for signals. Probably ctrl-c from user */ 3838 if (signal_pending(current)) { 3839 prep_and_add_allocated_folios(h, &page_list); 3840 spin_lock_irq(&hugetlb_lock); 3841 goto out; 3842 } 3843 3844 spin_lock_irq(&hugetlb_lock); 3845 } 3846 3847 /* Add allocated pages to the pool */ 3848 if (!list_empty(&page_list)) { 3849 spin_unlock_irq(&hugetlb_lock); 3850 prep_and_add_allocated_folios(h, &page_list); 3851 spin_lock_irq(&hugetlb_lock); 3852 } 3853 3854 /* 3855 * Decrease the pool size 3856 * First return free pages to the buddy allocator (being careful 3857 * to keep enough around to satisfy reservations). Then place 3858 * pages into surplus state as needed so the pool will shrink 3859 * to the desired size as pages become free. 3860 * 3861 * By placing pages into the surplus state independent of the 3862 * overcommit value, we are allowing the surplus pool size to 3863 * exceed overcommit. There are few sane options here. Since 3864 * alloc_surplus_hugetlb_folio() is checking the global counter, 3865 * though, we'll note that we're not allowed to exceed surplus 3866 * and won't grow the pool anywhere else. Not until one of the 3867 * sysctls are changed, or the surplus pages go out of use. 3868 * 3869 * min_count is the expected number of persistent pages, we 3870 * shouldn't calculate min_count by using 3871 * resv_huge_pages + persistent_huge_pages() - free_huge_pages, 3872 * because there may exist free surplus huge pages, and this will 3873 * lead to subtracting twice. Free surplus huge pages come from HVO 3874 * failing to restore vmemmap, see comments in the callers of 3875 * hugetlb_vmemmap_restore_folio(). Thus, we should calculate 3876 * persistent free count first. 3877 */ 3878 persistent_free_count = h->free_huge_pages; 3879 if (h->free_huge_pages > persistent_huge_pages(h)) { 3880 if (h->free_huge_pages > h->surplus_huge_pages) 3881 persistent_free_count -= h->surplus_huge_pages; 3882 else 3883 persistent_free_count = 0; 3884 } 3885 min_count = h->resv_huge_pages + persistent_huge_pages(h) - persistent_free_count; 3886 min_count = max(count, min_count); 3887 try_to_free_low(h, min_count, nodes_allowed); 3888 3889 /* 3890 * Collect pages to be removed on list without dropping lock 3891 */ 3892 while (min_count < persistent_huge_pages(h)) { 3893 folio = remove_pool_hugetlb_folio(h, nodes_allowed, 0); 3894 if (!folio) 3895 break; 3896 3897 list_add(&folio->lru, &page_list); 3898 } 3899 /* free the pages after dropping lock */ 3900 spin_unlock_irq(&hugetlb_lock); 3901 update_and_free_pages_bulk(h, &page_list); 3902 flush_free_hpage_work(h); 3903 spin_lock_irq(&hugetlb_lock); 3904 3905 while (count < persistent_huge_pages(h)) { 3906 if (!adjust_pool_surplus(h, nodes_allowed, 1)) 3907 break; 3908 } 3909 out: 3910 h->max_huge_pages = persistent_huge_pages(h); 3911 spin_unlock_irq(&hugetlb_lock); 3912 mutex_unlock(&h->resize_lock); 3913 3914 NODEMASK_FREE(node_alloc_noretry); 3915 3916 return 0; 3917 } 3918 3919 static long demote_free_hugetlb_folios(struct hstate *src, struct hstate *dst, 3920 struct list_head *src_list) 3921 { 3922 long rc; 3923 struct folio *folio, *next; 3924 LIST_HEAD(dst_list); 3925 LIST_HEAD(ret_list); 3926 3927 rc = hugetlb_vmemmap_restore_folios(src, src_list, &ret_list); 3928 list_splice_init(&ret_list, src_list); 3929 3930 /* 3931 * Taking target hstate mutex synchronizes with set_max_huge_pages. 3932 * Without the mutex, pages added to target hstate could be marked 3933 * as surplus. 3934 * 3935 * Note that we already hold src->resize_lock. To prevent deadlock, 3936 * use the convention of always taking larger size hstate mutex first. 3937 */ 3938 mutex_lock(&dst->resize_lock); 3939 3940 list_for_each_entry_safe(folio, next, src_list, lru) { 3941 int i; 3942 bool cma; 3943 3944 if (folio_test_hugetlb_vmemmap_optimized(folio)) 3945 continue; 3946 3947 cma = folio_test_hugetlb_cma(folio); 3948 3949 list_del(&folio->lru); 3950 3951 split_page_owner(&folio->page, huge_page_order(src), huge_page_order(dst)); 3952 pgalloc_tag_split(folio, huge_page_order(src), huge_page_order(dst)); 3953 3954 for (i = 0; i < pages_per_huge_page(src); i += pages_per_huge_page(dst)) { 3955 struct page *page = folio_page(folio, i); 3956 /* Careful: see __split_huge_page_tail() */ 3957 struct folio *new_folio = (struct folio *)page; 3958 3959 clear_compound_head(page); 3960 prep_compound_page(page, dst->order); 3961 3962 new_folio->mapping = NULL; 3963 init_new_hugetlb_folio(new_folio); 3964 /* Copy the CMA flag so that it is freed correctly */ 3965 if (cma) 3966 folio_set_hugetlb_cma(new_folio); 3967 list_add(&new_folio->lru, &dst_list); 3968 } 3969 } 3970 3971 prep_and_add_allocated_folios(dst, &dst_list); 3972 3973 mutex_unlock(&dst->resize_lock); 3974 3975 return rc; 3976 } 3977 3978 long demote_pool_huge_page(struct hstate *src, nodemask_t *nodes_allowed, 3979 unsigned long nr_to_demote) 3980 __must_hold(&hugetlb_lock) 3981 { 3982 int nr_nodes, node; 3983 struct hstate *dst; 3984 long rc = 0; 3985 long nr_demoted = 0; 3986 3987 lockdep_assert_held(&hugetlb_lock); 3988 3989 /* We should never get here if no demote order */ 3990 if (!src->demote_order) { 3991 pr_warn("HugeTLB: NULL demote order passed to demote_pool_huge_page.\n"); 3992 return -EINVAL; /* internal error */ 3993 } 3994 dst = size_to_hstate(PAGE_SIZE << src->demote_order); 3995 3996 for_each_node_mask_to_free(src, nr_nodes, node, nodes_allowed) { 3997 LIST_HEAD(list); 3998 struct folio *folio, *next; 3999 4000 list_for_each_entry_safe(folio, next, &src->hugepage_freelists[node], lru) { 4001 if (folio_test_hwpoison(folio)) 4002 continue; 4003 4004 remove_hugetlb_folio(src, folio, false); 4005 list_add(&folio->lru, &list); 4006 4007 if (++nr_demoted == nr_to_demote) 4008 break; 4009 } 4010 4011 spin_unlock_irq(&hugetlb_lock); 4012 4013 rc = demote_free_hugetlb_folios(src, dst, &list); 4014 4015 spin_lock_irq(&hugetlb_lock); 4016 4017 list_for_each_entry_safe(folio, next, &list, lru) { 4018 list_del(&folio->lru); 4019 add_hugetlb_folio(src, folio, false); 4020 4021 nr_demoted--; 4022 } 4023 4024 if (rc < 0 || nr_demoted == nr_to_demote) 4025 break; 4026 } 4027 4028 /* 4029 * Not absolutely necessary, but for consistency update max_huge_pages 4030 * based on pool changes for the demoted page. 4031 */ 4032 src->max_huge_pages -= nr_demoted; 4033 dst->max_huge_pages += nr_demoted << (huge_page_order(src) - huge_page_order(dst)); 4034 4035 if (rc < 0) 4036 return rc; 4037 4038 if (nr_demoted) 4039 return nr_demoted; 4040 /* 4041 * Only way to get here is if all pages on free lists are poisoned. 4042 * Return -EBUSY so that caller will not retry. 4043 */ 4044 return -EBUSY; 4045 } 4046 4047 ssize_t __nr_hugepages_store_common(bool obey_mempolicy, 4048 struct hstate *h, int nid, 4049 unsigned long count, size_t len) 4050 { 4051 int err; 4052 nodemask_t nodes_allowed, *n_mask; 4053 4054 if (hstate_is_gigantic_no_runtime(h)) 4055 return -EINVAL; 4056 4057 if (nid == NUMA_NO_NODE) { 4058 /* 4059 * global hstate attribute 4060 */ 4061 if (!(obey_mempolicy && 4062 init_nodemask_of_mempolicy(&nodes_allowed))) 4063 n_mask = &node_states[N_MEMORY]; 4064 else 4065 n_mask = &nodes_allowed; 4066 } else { 4067 /* 4068 * Node specific request. count adjustment happens in 4069 * set_max_huge_pages() after acquiring hugetlb_lock. 4070 */ 4071 init_nodemask_of_node(&nodes_allowed, nid); 4072 n_mask = &nodes_allowed; 4073 } 4074 4075 err = set_max_huge_pages(h, count, nid, n_mask); 4076 4077 return err ? err : len; 4078 } 4079 4080 static int __init hugetlb_init(void) 4081 { 4082 int i; 4083 4084 BUILD_BUG_ON(sizeof_field(struct page, private) * BITS_PER_BYTE < 4085 __NR_HPAGEFLAGS); 4086 BUILD_BUG_ON_INVALID(HUGETLB_PAGE_ORDER > MAX_FOLIO_ORDER); 4087 4088 if (!hugepages_supported()) { 4089 if (hugetlb_max_hstate || default_hstate_max_huge_pages) 4090 pr_warn("HugeTLB: huge pages not supported, ignoring associated command-line parameters\n"); 4091 return 0; 4092 } 4093 4094 /* 4095 * Make sure HPAGE_SIZE (HUGETLB_PAGE_ORDER) hstate exists. Some 4096 * architectures depend on setup being done here. 4097 */ 4098 hugetlb_add_hstate(HUGETLB_PAGE_ORDER); 4099 if (!parsed_default_hugepagesz) { 4100 /* 4101 * If we did not parse a default huge page size, set 4102 * default_hstate_idx to HPAGE_SIZE hstate. And, if the 4103 * number of huge pages for this default size was implicitly 4104 * specified, set that here as well. 4105 * Note that the implicit setting will overwrite an explicit 4106 * setting. A warning will be printed in this case. 4107 */ 4108 default_hstate_idx = hstate_index(size_to_hstate(HPAGE_SIZE)); 4109 if (default_hstate_max_huge_pages) { 4110 if (default_hstate.max_huge_pages) { 4111 char buf[32]; 4112 4113 string_get_size(huge_page_size(&default_hstate), 4114 1, STRING_UNITS_2, buf, 32); 4115 pr_warn("HugeTLB: Ignoring hugepages=%lu associated with %s page size\n", 4116 default_hstate.max_huge_pages, buf); 4117 pr_warn("HugeTLB: Using hugepages=%lu for number of default huge pages\n", 4118 default_hstate_max_huge_pages); 4119 } 4120 default_hstate.max_huge_pages = 4121 default_hstate_max_huge_pages; 4122 4123 for_each_online_node(i) 4124 default_hstate.max_huge_pages_node[i] = 4125 default_hugepages_in_node[i]; 4126 } 4127 } 4128 4129 hugetlb_init_hstates(); 4130 gather_bootmem_prealloc(); 4131 report_hugepages(); 4132 4133 hugetlb_sysfs_init(); 4134 hugetlb_cgroup_file_init(); 4135 hugetlb_sysctl_init(); 4136 4137 #ifdef CONFIG_SMP 4138 num_fault_mutexes = roundup_pow_of_two(8 * num_possible_cpus()); 4139 #else 4140 num_fault_mutexes = 1; 4141 #endif 4142 hugetlb_fault_mutex_table = 4143 kmalloc_objs(struct mutex, num_fault_mutexes); 4144 BUG_ON(!hugetlb_fault_mutex_table); 4145 4146 for (i = 0; i < num_fault_mutexes; i++) 4147 mutex_init(&hugetlb_fault_mutex_table[i]); 4148 return 0; 4149 } 4150 subsys_initcall(hugetlb_init); 4151 4152 /* Overwritten by architectures with more huge page sizes */ 4153 bool __init __attribute((weak)) arch_hugetlb_valid_size(unsigned long size) 4154 { 4155 return size == HPAGE_SIZE; 4156 } 4157 4158 void __init hugetlb_add_hstate(unsigned int order) 4159 { 4160 struct hstate *h; 4161 unsigned long i; 4162 4163 if (size_to_hstate(PAGE_SIZE << order)) { 4164 return; 4165 } 4166 BUG_ON(hugetlb_max_hstate >= HUGE_MAX_HSTATE); 4167 BUG_ON(order < order_base_2(__NR_USED_SUBPAGE)); 4168 WARN_ON(order > MAX_FOLIO_ORDER); 4169 h = &hstates[hugetlb_max_hstate++]; 4170 __mutex_init(&h->resize_lock, "resize mutex", &h->resize_key); 4171 h->order = order; 4172 h->mask = ~(huge_page_size(h) - 1); 4173 for (i = 0; i < MAX_NUMNODES; ++i) 4174 INIT_LIST_HEAD(&h->hugepage_freelists[i]); 4175 INIT_LIST_HEAD(&h->hugepage_activelist); 4176 snprintf(h->name, HSTATE_NAME_LEN, "hugepages-%lukB", 4177 huge_page_size(h)/SZ_1K); 4178 4179 parsed_hstate = h; 4180 } 4181 4182 bool __init __weak hugetlb_node_alloc_supported(void) 4183 { 4184 return true; 4185 } 4186 4187 static void __init hugepages_clear_pages_in_node(void) 4188 { 4189 if (!hugetlb_max_hstate) { 4190 default_hstate_max_huge_pages = 0; 4191 memset(default_hugepages_in_node, 0, 4192 sizeof(default_hugepages_in_node)); 4193 } else { 4194 parsed_hstate->max_huge_pages = 0; 4195 memset(parsed_hstate->max_huge_pages_node, 0, 4196 sizeof(parsed_hstate->max_huge_pages_node)); 4197 } 4198 } 4199 4200 static __init int hugetlb_add_param(char *s, int (*setup)(char *)) 4201 { 4202 size_t len; 4203 char *p; 4204 4205 if (!s) 4206 return -EINVAL; 4207 4208 if (hugetlb_param_index >= HUGE_MAX_CMDLINE_ARGS) 4209 return -EINVAL; 4210 4211 len = strlen(s) + 1; 4212 if (len + hstate_cmdline_index > sizeof(hstate_cmdline_buf)) 4213 return -EINVAL; 4214 4215 p = &hstate_cmdline_buf[hstate_cmdline_index]; 4216 memcpy(p, s, len); 4217 hstate_cmdline_index += len; 4218 4219 hugetlb_params[hugetlb_param_index].val = p; 4220 hugetlb_params[hugetlb_param_index].setup = setup; 4221 4222 hugetlb_param_index++; 4223 4224 return 0; 4225 } 4226 4227 static __init void hugetlb_parse_params(void) 4228 { 4229 int i; 4230 struct hugetlb_cmdline *hcp; 4231 4232 for (i = 0; i < hugetlb_param_index; i++) { 4233 hcp = &hugetlb_params[i]; 4234 4235 hcp->setup(hcp->val); 4236 } 4237 4238 hugetlb_cma_validate_params(); 4239 } 4240 4241 /* 4242 * hugepages command line processing 4243 * hugepages normally follows a valid hugepagsz or default_hugepagsz 4244 * specification. If not, ignore the hugepages value. hugepages can also 4245 * be the first huge page command line option in which case it implicitly 4246 * specifies the number of huge pages for the default size. 4247 */ 4248 static int __init hugepages_setup(char *s) 4249 { 4250 unsigned long *mhp; 4251 static unsigned long *last_mhp; 4252 int node = NUMA_NO_NODE; 4253 int count; 4254 unsigned long tmp; 4255 char *p = s; 4256 4257 if (!hugepages_supported()) { 4258 pr_warn("HugeTLB: hugepages unsupported, ignoring hugepages=%s cmdline\n", s); 4259 return 0; 4260 } 4261 4262 if (!parsed_valid_hugepagesz) { 4263 pr_warn("HugeTLB: hugepages=%s does not follow a valid hugepagesz, ignoring\n", s); 4264 parsed_valid_hugepagesz = true; 4265 return -EINVAL; 4266 } 4267 4268 /* 4269 * !hugetlb_max_hstate means we haven't parsed a hugepagesz= parameter 4270 * yet, so this hugepages= parameter goes to the "default hstate". 4271 * Otherwise, it goes with the previously parsed hugepagesz or 4272 * default_hugepagesz. 4273 */ 4274 else if (!hugetlb_max_hstate) 4275 mhp = &default_hstate_max_huge_pages; 4276 else 4277 mhp = &parsed_hstate->max_huge_pages; 4278 4279 if (mhp == last_mhp) { 4280 pr_warn("HugeTLB: hugepages= specified twice without interleaving hugepagesz=, ignoring hugepages=%s\n", s); 4281 return 1; 4282 } 4283 4284 while (*p) { 4285 count = 0; 4286 if (sscanf(p, "%lu%n", &tmp, &count) != 1) 4287 goto invalid; 4288 /* Parameter is node format */ 4289 if (p[count] == ':') { 4290 if (!hugetlb_node_alloc_supported()) { 4291 pr_warn("HugeTLB: architecture can't support node specific alloc, ignoring!\n"); 4292 return 1; 4293 } 4294 if (tmp >= MAX_NUMNODES || !node_online(tmp)) 4295 goto invalid; 4296 node = array_index_nospec(tmp, MAX_NUMNODES); 4297 p += count + 1; 4298 /* Parse hugepages */ 4299 if (sscanf(p, "%lu%n", &tmp, &count) != 1) 4300 goto invalid; 4301 if (!hugetlb_max_hstate) 4302 default_hugepages_in_node[node] = tmp; 4303 else 4304 parsed_hstate->max_huge_pages_node[node] = tmp; 4305 *mhp += tmp; 4306 /* Go to parse next node*/ 4307 if (p[count] == ',') 4308 p += count + 1; 4309 else 4310 break; 4311 } else { 4312 if (p != s) 4313 goto invalid; 4314 *mhp = tmp; 4315 break; 4316 } 4317 } 4318 4319 last_mhp = mhp; 4320 4321 return 0; 4322 4323 invalid: 4324 pr_warn("HugeTLB: Invalid hugepages parameter %s\n", p); 4325 hugepages_clear_pages_in_node(); 4326 return -EINVAL; 4327 } 4328 hugetlb_early_param("hugepages", hugepages_setup); 4329 4330 /* 4331 * hugepagesz command line processing 4332 * A specific huge page size can only be specified once with hugepagesz. 4333 * hugepagesz is followed by hugepages on the command line. The global 4334 * variable 'parsed_valid_hugepagesz' is used to determine if prior 4335 * hugepagesz argument was valid. 4336 */ 4337 static int __init hugepagesz_setup(char *s) 4338 { 4339 unsigned long size; 4340 struct hstate *h; 4341 4342 if (!hugepages_supported()) { 4343 pr_warn("HugeTLB: hugepages unsupported, ignoring hugepagesz=%s cmdline\n", s); 4344 return 0; 4345 } 4346 4347 parsed_valid_hugepagesz = false; 4348 size = (unsigned long)memparse(s, NULL); 4349 4350 if (!arch_hugetlb_valid_size(size)) { 4351 pr_err("HugeTLB: unsupported hugepagesz=%s\n", s); 4352 return -EINVAL; 4353 } 4354 4355 h = size_to_hstate(size); 4356 if (h) { 4357 /* 4358 * hstate for this size already exists. This is normally 4359 * an error, but is allowed if the existing hstate is the 4360 * default hstate. More specifically, it is only allowed if 4361 * the number of huge pages for the default hstate was not 4362 * previously specified. 4363 */ 4364 if (!parsed_default_hugepagesz || h != &default_hstate || 4365 default_hstate.max_huge_pages) { 4366 pr_warn("HugeTLB: hugepagesz=%s specified twice, ignoring\n", s); 4367 return -EINVAL; 4368 } 4369 4370 /* 4371 * No need to call hugetlb_add_hstate() as hstate already 4372 * exists. But, do set parsed_hstate so that a following 4373 * hugepages= parameter will be applied to this hstate. 4374 */ 4375 parsed_hstate = h; 4376 parsed_valid_hugepagesz = true; 4377 return 0; 4378 } 4379 4380 hugetlb_add_hstate(ilog2(size) - PAGE_SHIFT); 4381 parsed_valid_hugepagesz = true; 4382 return 0; 4383 } 4384 hugetlb_early_param("hugepagesz", hugepagesz_setup); 4385 4386 /* 4387 * default_hugepagesz command line input 4388 * Only one instance of default_hugepagesz allowed on command line. 4389 */ 4390 static int __init default_hugepagesz_setup(char *s) 4391 { 4392 unsigned long size; 4393 int i; 4394 4395 if (!hugepages_supported()) { 4396 pr_warn("HugeTLB: hugepages unsupported, ignoring default_hugepagesz=%s cmdline\n", 4397 s); 4398 return 0; 4399 } 4400 4401 parsed_valid_hugepagesz = false; 4402 if (parsed_default_hugepagesz) { 4403 pr_err("HugeTLB: default_hugepagesz previously specified, ignoring %s\n", s); 4404 return -EINVAL; 4405 } 4406 4407 size = (unsigned long)memparse(s, NULL); 4408 4409 if (!arch_hugetlb_valid_size(size)) { 4410 pr_err("HugeTLB: unsupported default_hugepagesz=%s\n", s); 4411 return -EINVAL; 4412 } 4413 4414 hugetlb_add_hstate(ilog2(size) - PAGE_SHIFT); 4415 parsed_valid_hugepagesz = true; 4416 parsed_default_hugepagesz = true; 4417 default_hstate_idx = hstate_index(size_to_hstate(size)); 4418 4419 /* 4420 * The number of default huge pages (for this size) could have been 4421 * specified as the first hugetlb parameter: hugepages=X. If so, 4422 * then default_hstate_max_huge_pages is set. If the default huge 4423 * page size is gigantic (> MAX_PAGE_ORDER), then the pages must be 4424 * allocated here from bootmem allocator. 4425 */ 4426 if (default_hstate_max_huge_pages) { 4427 default_hstate.max_huge_pages = default_hstate_max_huge_pages; 4428 /* 4429 * Since this is an early parameter, we can't check 4430 * NUMA node state yet, so loop through MAX_NUMNODES. 4431 */ 4432 for (i = 0; i < MAX_NUMNODES; i++) { 4433 if (default_hugepages_in_node[i] != 0) 4434 default_hstate.max_huge_pages_node[i] = 4435 default_hugepages_in_node[i]; 4436 } 4437 default_hstate_max_huge_pages = 0; 4438 } 4439 4440 return 0; 4441 } 4442 hugetlb_early_param("default_hugepagesz", default_hugepagesz_setup); 4443 4444 void __init hugetlb_bootmem_set_nodes(void) 4445 { 4446 int i, nid; 4447 unsigned long start_pfn, end_pfn; 4448 4449 if (!nodes_empty(hugetlb_bootmem_nodes)) 4450 return; 4451 4452 for_each_mem_pfn_range(i, MAX_NUMNODES, &start_pfn, &end_pfn, &nid) { 4453 if (end_pfn > start_pfn) 4454 node_set(nid, hugetlb_bootmem_nodes); 4455 } 4456 } 4457 4458 void __init hugetlb_bootmem_alloc(void) 4459 { 4460 struct hstate *h; 4461 int i; 4462 4463 hugetlb_bootmem_set_nodes(); 4464 4465 for (i = 0; i < MAX_NUMNODES; i++) 4466 INIT_LIST_HEAD(&huge_boot_pages[i]); 4467 4468 hugetlb_parse_params(); 4469 4470 for_each_hstate(h) { 4471 h->next_nid_to_alloc = first_online_node; 4472 4473 if (hstate_is_gigantic(h)) 4474 hugetlb_hstate_alloc_pages(h); 4475 } 4476 } 4477 4478 /* 4479 * hugepage_alloc_threads command line parsing. 4480 * 4481 * When set, use this specific number of threads for the boot 4482 * allocation of hugepages. 4483 */ 4484 static int __init hugepage_alloc_threads_setup(char *s) 4485 { 4486 unsigned long allocation_threads; 4487 4488 if (kstrtoul(s, 0, &allocation_threads) != 0) 4489 return 1; 4490 4491 if (allocation_threads == 0) 4492 return 1; 4493 4494 hugepage_allocation_threads = allocation_threads; 4495 4496 return 1; 4497 } 4498 __setup("hugepage_alloc_threads=", hugepage_alloc_threads_setup); 4499 4500 static unsigned int allowed_mems_nr(struct hstate *h) 4501 { 4502 int node; 4503 unsigned int nr = 0; 4504 nodemask_t *mbind_nodemask; 4505 unsigned int *array = h->free_huge_pages_node; 4506 gfp_t gfp_mask = htlb_alloc_mask(h); 4507 4508 mbind_nodemask = policy_mbind_nodemask(gfp_mask); 4509 for_each_node_mask(node, cpuset_current_mems_allowed) { 4510 if (!mbind_nodemask || node_isset(node, *mbind_nodemask)) 4511 nr += array[node]; 4512 } 4513 4514 return nr; 4515 } 4516 4517 void hugetlb_report_meminfo(struct seq_file *m) 4518 { 4519 struct hstate *h; 4520 unsigned long total = 0; 4521 4522 if (!hugepages_supported()) 4523 return; 4524 4525 for_each_hstate(h) { 4526 unsigned long count = h->nr_huge_pages; 4527 4528 total += huge_page_size(h) * count; 4529 4530 if (h == &default_hstate) 4531 seq_printf(m, 4532 "HugePages_Total: %5lu\n" 4533 "HugePages_Free: %5lu\n" 4534 "HugePages_Rsvd: %5lu\n" 4535 "HugePages_Surp: %5lu\n" 4536 "Hugepagesize: %8lu kB\n", 4537 count, 4538 h->free_huge_pages, 4539 h->resv_huge_pages, 4540 h->surplus_huge_pages, 4541 huge_page_size(h) / SZ_1K); 4542 } 4543 4544 seq_printf(m, "Hugetlb: %8lu kB\n", total / SZ_1K); 4545 } 4546 4547 int hugetlb_report_node_meminfo(char *buf, int len, int nid) 4548 { 4549 struct hstate *h = &default_hstate; 4550 4551 if (!hugepages_supported()) 4552 return 0; 4553 4554 return sysfs_emit_at(buf, len, 4555 "Node %d HugePages_Total: %5u\n" 4556 "Node %d HugePages_Free: %5u\n" 4557 "Node %d HugePages_Surp: %5u\n", 4558 nid, h->nr_huge_pages_node[nid], 4559 nid, h->free_huge_pages_node[nid], 4560 nid, h->surplus_huge_pages_node[nid]); 4561 } 4562 4563 void hugetlb_show_meminfo_node(int nid) 4564 { 4565 struct hstate *h; 4566 4567 if (!hugepages_supported()) 4568 return; 4569 4570 for_each_hstate(h) 4571 printk("Node %d hugepages_total=%u hugepages_free=%u hugepages_surp=%u hugepages_size=%lukB\n", 4572 nid, 4573 h->nr_huge_pages_node[nid], 4574 h->free_huge_pages_node[nid], 4575 h->surplus_huge_pages_node[nid], 4576 huge_page_size(h) / SZ_1K); 4577 } 4578 4579 void hugetlb_report_usage(struct seq_file *m, struct mm_struct *mm) 4580 { 4581 seq_printf(m, "HugetlbPages:\t%8lu kB\n", 4582 K(atomic_long_read(&mm->hugetlb_usage))); 4583 } 4584 4585 /* Return the number pages of memory we physically have, in PAGE_SIZE units. */ 4586 unsigned long hugetlb_total_pages(void) 4587 { 4588 struct hstate *h; 4589 unsigned long nr_total_pages = 0; 4590 4591 for_each_hstate(h) 4592 nr_total_pages += h->nr_huge_pages * pages_per_huge_page(h); 4593 return nr_total_pages; 4594 } 4595 4596 static int hugetlb_acct_memory(struct hstate *h, long delta) 4597 { 4598 int ret = -ENOMEM; 4599 4600 if (!delta) 4601 return 0; 4602 4603 spin_lock_irq(&hugetlb_lock); 4604 /* 4605 * When cpuset is configured, it breaks the strict hugetlb page 4606 * reservation as the accounting is done on a global variable. Such 4607 * reservation is completely rubbish in the presence of cpuset because 4608 * the reservation is not checked against page availability for the 4609 * current cpuset. Application can still potentially OOM'ed by kernel 4610 * with lack of free htlb page in cpuset that the task is in. 4611 * Attempt to enforce strict accounting with cpuset is almost 4612 * impossible (or too ugly) because cpuset is too fluid that 4613 * task or memory node can be dynamically moved between cpusets. 4614 * 4615 * The change of semantics for shared hugetlb mapping with cpuset is 4616 * undesirable. However, in order to preserve some of the semantics, 4617 * we fall back to check against current free page availability as 4618 * a best attempt and hopefully to minimize the impact of changing 4619 * semantics that cpuset has. 4620 * 4621 * Apart from cpuset, we also have memory policy mechanism that 4622 * also determines from which node the kernel will allocate memory 4623 * in a NUMA system. So similar to cpuset, we also should consider 4624 * the memory policy of the current task. Similar to the description 4625 * above. 4626 */ 4627 if (delta > 0) { 4628 if (gather_surplus_pages(h, delta) < 0) 4629 goto out; 4630 4631 if (delta > allowed_mems_nr(h)) { 4632 return_unused_surplus_pages(h, delta); 4633 goto out; 4634 } 4635 } 4636 4637 ret = 0; 4638 if (delta < 0) 4639 return_unused_surplus_pages(h, (unsigned long) -delta); 4640 4641 out: 4642 spin_unlock_irq(&hugetlb_lock); 4643 return ret; 4644 } 4645 4646 static void hugetlb_vm_op_open(struct vm_area_struct *vma) 4647 { 4648 struct resv_map *resv = vma_resv_map(vma); 4649 4650 /* 4651 * HPAGE_RESV_OWNER indicates a private mapping. 4652 * This new VMA should share its siblings reservation map if present. 4653 * The VMA will only ever have a valid reservation map pointer where 4654 * it is being copied for another still existing VMA. As that VMA 4655 * has a reference to the reservation map it cannot disappear until 4656 * after this open call completes. It is therefore safe to take a 4657 * new reference here without additional locking. 4658 */ 4659 if (resv && is_vma_resv_set(vma, HPAGE_RESV_OWNER)) { 4660 resv_map_dup_hugetlb_cgroup_uncharge_info(resv); 4661 kref_get(&resv->refs); 4662 } 4663 4664 /* 4665 * vma_lock structure for sharable mappings is vma specific. 4666 * Clear old pointer (if copied via vm_area_dup) and allocate 4667 * new structure. Before clearing, make sure vma_lock is not 4668 * for this vma. 4669 */ 4670 if (vma->vm_flags & VM_MAYSHARE) { 4671 struct hugetlb_vma_lock *vma_lock = vma->vm_private_data; 4672 4673 if (vma_lock) { 4674 if (vma_lock->vma != vma) { 4675 vma->vm_private_data = NULL; 4676 hugetlb_vma_lock_alloc(vma); 4677 } else { 4678 pr_warn("HugeTLB: vma_lock already exists in %s.\n", __func__); 4679 } 4680 } else { 4681 hugetlb_vma_lock_alloc(vma); 4682 } 4683 } 4684 } 4685 4686 static void hugetlb_vm_op_close(struct vm_area_struct *vma) 4687 { 4688 struct hstate *h = hstate_vma(vma); 4689 struct resv_map *resv; 4690 struct hugepage_subpool *spool = subpool_vma(vma); 4691 unsigned long reserve, start, end; 4692 long gbl_reserve; 4693 4694 hugetlb_vma_lock_free(vma); 4695 4696 resv = vma_resv_map(vma); 4697 if (!resv || !is_vma_resv_set(vma, HPAGE_RESV_OWNER)) 4698 return; 4699 4700 start = vma_hugecache_offset(h, vma, vma->vm_start); 4701 end = vma_hugecache_offset(h, vma, vma->vm_end); 4702 4703 reserve = (end - start) - region_count(resv, start, end); 4704 hugetlb_cgroup_uncharge_counter(resv, start, end); 4705 if (reserve) { 4706 /* 4707 * Decrement reserve counts. The global reserve count may be 4708 * adjusted if the subpool has a minimum size. 4709 */ 4710 gbl_reserve = hugepage_subpool_put_pages(spool, reserve); 4711 hugetlb_acct_memory(h, -gbl_reserve); 4712 } 4713 4714 kref_put(&resv->refs, resv_map_release); 4715 } 4716 4717 static int hugetlb_vm_op_split(struct vm_area_struct *vma, unsigned long addr) 4718 { 4719 if (addr & ~(huge_page_mask(hstate_vma(vma)))) 4720 return -EINVAL; 4721 return 0; 4722 } 4723 4724 void hugetlb_split(struct vm_area_struct *vma, unsigned long addr) 4725 { 4726 /* 4727 * PMD sharing is only possible for PUD_SIZE-aligned address ranges 4728 * in HugeTLB VMAs. If we will lose PUD_SIZE alignment due to this 4729 * split, unshare PMDs in the PUD_SIZE interval surrounding addr now. 4730 * This function is called in the middle of a VMA split operation, with 4731 * MM, VMA and rmap all write-locked to prevent concurrent page table 4732 * walks (except hardware and gup_fast()). 4733 */ 4734 vma_assert_write_locked(vma); 4735 i_mmap_assert_write_locked(vma->vm_file->f_mapping); 4736 4737 if (addr & ~PUD_MASK) { 4738 unsigned long floor = addr & PUD_MASK; 4739 unsigned long ceil = floor + PUD_SIZE; 4740 4741 if (floor >= vma->vm_start && ceil <= vma->vm_end) { 4742 /* 4743 * Locking: 4744 * Use take_locks=false here. 4745 * The file rmap lock is already held. 4746 * The hugetlb VMA lock can't be taken when we already 4747 * hold the file rmap lock, and we don't need it because 4748 * its purpose is to synchronize against concurrent page 4749 * table walks, which are not possible thanks to the 4750 * locks held by our caller. 4751 */ 4752 hugetlb_unshare_pmds(vma, floor, ceil, /* take_locks = */ false); 4753 } 4754 } 4755 } 4756 4757 static unsigned long hugetlb_vm_op_pagesize(struct vm_area_struct *vma) 4758 { 4759 return huge_page_size(hstate_vma(vma)); 4760 } 4761 4762 /* 4763 * We cannot handle pagefaults against hugetlb pages at all. They cause 4764 * handle_mm_fault() to try to instantiate regular-sized pages in the 4765 * hugepage VMA. do_page_fault() is supposed to trap this, so BUG is we get 4766 * this far. 4767 */ 4768 static vm_fault_t hugetlb_vm_op_fault(struct vm_fault *vmf) 4769 { 4770 BUG(); 4771 return 0; 4772 } 4773 4774 #ifdef CONFIG_USERFAULTFD 4775 static bool hugetlb_can_userfault(struct vm_area_struct *vma, 4776 vm_flags_t vm_flags) 4777 { 4778 return true; 4779 } 4780 4781 static const struct vm_uffd_ops hugetlb_uffd_ops = { 4782 .can_userfault = hugetlb_can_userfault, 4783 }; 4784 #endif 4785 4786 /* 4787 * When a new function is introduced to vm_operations_struct and added 4788 * to hugetlb_vm_ops, please consider adding the function to shm_vm_ops. 4789 * This is because under System V memory model, mappings created via 4790 * shmget/shmat with "huge page" specified are backed by hugetlbfs files, 4791 * their original vm_ops are overwritten with shm_vm_ops. 4792 */ 4793 const struct vm_operations_struct hugetlb_vm_ops = { 4794 .fault = hugetlb_vm_op_fault, 4795 .open = hugetlb_vm_op_open, 4796 .close = hugetlb_vm_op_close, 4797 .may_split = hugetlb_vm_op_split, 4798 .pagesize = hugetlb_vm_op_pagesize, 4799 #ifdef CONFIG_USERFAULTFD 4800 .uffd_ops = &hugetlb_uffd_ops, 4801 #endif 4802 }; 4803 4804 static pte_t make_huge_pte(struct vm_area_struct *vma, struct folio *folio, 4805 bool try_mkwrite) 4806 { 4807 pte_t entry = folio_mk_pte(folio, vma->vm_page_prot); 4808 unsigned int shift = huge_page_shift(hstate_vma(vma)); 4809 4810 if (try_mkwrite && (vma->vm_flags & VM_WRITE)) { 4811 entry = pte_mkwrite_novma(pte_mkdirty(entry)); 4812 } else { 4813 entry = pte_wrprotect(entry); 4814 } 4815 entry = pte_mkyoung(entry); 4816 entry = arch_make_huge_pte(entry, shift, vma->vm_flags); 4817 4818 return entry; 4819 } 4820 4821 static void set_huge_ptep_writable(struct vm_area_struct *vma, 4822 unsigned long address, pte_t *ptep) 4823 { 4824 pte_t entry; 4825 4826 entry = huge_pte_mkwrite(huge_pte_mkdirty(huge_ptep_get(vma->vm_mm, address, ptep))); 4827 if (huge_ptep_set_access_flags(vma, address, ptep, entry, 1)) 4828 update_mmu_cache(vma, address, ptep); 4829 } 4830 4831 static void set_huge_ptep_maybe_writable(struct vm_area_struct *vma, 4832 unsigned long address, pte_t *ptep) 4833 { 4834 if (vma->vm_flags & VM_WRITE) 4835 set_huge_ptep_writable(vma, address, ptep); 4836 } 4837 4838 static void 4839 hugetlb_install_folio(struct vm_area_struct *vma, pte_t *ptep, unsigned long addr, 4840 struct folio *new_folio, pte_t old, unsigned long sz) 4841 { 4842 pte_t newpte = make_huge_pte(vma, new_folio, true); 4843 4844 __folio_mark_uptodate(new_folio); 4845 hugetlb_add_new_anon_rmap(new_folio, vma, addr); 4846 if (userfaultfd_wp(vma) && huge_pte_uffd_wp(old)) 4847 newpte = huge_pte_mkuffd_wp(newpte); 4848 set_huge_pte_at(vma->vm_mm, addr, ptep, newpte, sz); 4849 hugetlb_count_add(pages_per_huge_page(hstate_vma(vma)), vma->vm_mm); 4850 folio_set_hugetlb_migratable(new_folio); 4851 } 4852 4853 int copy_hugetlb_page_range(struct mm_struct *dst, struct mm_struct *src, 4854 struct vm_area_struct *dst_vma, 4855 struct vm_area_struct *src_vma) 4856 { 4857 pte_t *src_pte, *dst_pte, entry; 4858 struct folio *pte_folio; 4859 unsigned long addr; 4860 bool cow = is_cow_mapping(src_vma->vm_flags); 4861 struct hstate *h = hstate_vma(src_vma); 4862 unsigned long sz = huge_page_size(h); 4863 unsigned long npages = pages_per_huge_page(h); 4864 struct mmu_notifier_range range; 4865 unsigned long last_addr_mask; 4866 softleaf_t softleaf; 4867 int ret = 0; 4868 4869 if (cow) { 4870 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, src, 4871 src_vma->vm_start, 4872 src_vma->vm_end); 4873 mmu_notifier_invalidate_range_start(&range); 4874 vma_assert_write_locked(src_vma); 4875 raw_write_seqcount_begin(&src->write_protect_seq); 4876 } else { 4877 /* 4878 * For shared mappings the vma lock must be held before 4879 * calling hugetlb_walk() in the src vma. Otherwise, the 4880 * returned ptep could go away if part of a shared pmd and 4881 * another thread calls huge_pmd_unshare. 4882 */ 4883 hugetlb_vma_lock_read(src_vma); 4884 } 4885 4886 last_addr_mask = hugetlb_mask_last_page(h); 4887 for (addr = src_vma->vm_start; addr < src_vma->vm_end; addr += sz) { 4888 spinlock_t *src_ptl, *dst_ptl; 4889 src_pte = hugetlb_walk(src_vma, addr, sz); 4890 if (!src_pte) { 4891 addr |= last_addr_mask; 4892 continue; 4893 } 4894 dst_pte = huge_pte_alloc(dst, dst_vma, addr, sz); 4895 if (!dst_pte) { 4896 ret = -ENOMEM; 4897 break; 4898 } 4899 4900 #ifdef CONFIG_HUGETLB_PMD_PAGE_TABLE_SHARING 4901 /* If the pagetables are shared, there is nothing to do */ 4902 if (ptdesc_pmd_is_shared(virt_to_ptdesc(dst_pte))) { 4903 addr |= last_addr_mask; 4904 continue; 4905 } 4906 #endif 4907 4908 dst_ptl = huge_pte_lock(h, dst, dst_pte); 4909 src_ptl = huge_pte_lockptr(h, src, src_pte); 4910 spin_lock_nested(src_ptl, SINGLE_DEPTH_NESTING); 4911 entry = huge_ptep_get(src_vma->vm_mm, addr, src_pte); 4912 again: 4913 if (huge_pte_none(entry)) { 4914 /* Skip if src entry none. */ 4915 goto next; 4916 } 4917 4918 softleaf = softleaf_from_pte(entry); 4919 if (unlikely(softleaf_is_hwpoison(softleaf))) { 4920 if (!userfaultfd_wp(dst_vma)) 4921 entry = huge_pte_clear_uffd_wp(entry); 4922 set_huge_pte_at(dst, addr, dst_pte, entry, sz); 4923 } else if (unlikely(softleaf_is_migration(softleaf))) { 4924 bool uffd_wp = pte_swp_uffd_wp(entry); 4925 4926 if (!softleaf_is_migration_read(softleaf) && cow) { 4927 /* 4928 * COW mappings require pages in both 4929 * parent and child to be set to read. 4930 */ 4931 softleaf = make_readable_migration_entry( 4932 swp_offset(softleaf)); 4933 entry = swp_entry_to_pte(softleaf); 4934 if (userfaultfd_wp(src_vma) && uffd_wp) 4935 entry = pte_swp_mkuffd_wp(entry); 4936 set_huge_pte_at(src, addr, src_pte, entry, sz); 4937 } 4938 if (!userfaultfd_wp(dst_vma)) 4939 entry = huge_pte_clear_uffd_wp(entry); 4940 set_huge_pte_at(dst, addr, dst_pte, entry, sz); 4941 } else if (unlikely(pte_is_marker(entry))) { 4942 const pte_marker marker = copy_pte_marker(softleaf, dst_vma); 4943 4944 if (marker) 4945 set_huge_pte_at(dst, addr, dst_pte, 4946 make_pte_marker(marker), sz); 4947 } else { 4948 entry = huge_ptep_get(src_vma->vm_mm, addr, src_pte); 4949 pte_folio = page_folio(pte_page(entry)); 4950 folio_get(pte_folio); 4951 4952 /* 4953 * Failing to duplicate the anon rmap is a rare case 4954 * where we see pinned hugetlb pages while they're 4955 * prone to COW. We need to do the COW earlier during 4956 * fork. 4957 * 4958 * When pre-allocating the page or copying data, we 4959 * need to be without the pgtable locks since we could 4960 * sleep during the process. 4961 */ 4962 if (!folio_test_anon(pte_folio)) { 4963 hugetlb_add_file_rmap(pte_folio); 4964 } else if (hugetlb_try_dup_anon_rmap(pte_folio, src_vma)) { 4965 pte_t src_pte_old = entry; 4966 struct folio *new_folio; 4967 4968 spin_unlock(src_ptl); 4969 spin_unlock(dst_ptl); 4970 /* Do not use reserve as it's private owned */ 4971 new_folio = alloc_hugetlb_folio(dst_vma, addr, false); 4972 if (IS_ERR(new_folio)) { 4973 folio_put(pte_folio); 4974 ret = PTR_ERR(new_folio); 4975 break; 4976 } 4977 ret = copy_user_large_folio(new_folio, pte_folio, 4978 addr, dst_vma); 4979 folio_put(pte_folio); 4980 if (ret) { 4981 restore_reserve_on_error(h, dst_vma, addr, new_folio); 4982 folio_put(new_folio); 4983 break; 4984 } 4985 4986 /* Install the new hugetlb folio if src pte stable */ 4987 dst_ptl = huge_pte_lock(h, dst, dst_pte); 4988 src_ptl = huge_pte_lockptr(h, src, src_pte); 4989 spin_lock_nested(src_ptl, SINGLE_DEPTH_NESTING); 4990 entry = huge_ptep_get(src_vma->vm_mm, addr, src_pte); 4991 if (!pte_same(src_pte_old, entry)) { 4992 restore_reserve_on_error(h, dst_vma, addr, 4993 new_folio); 4994 folio_put(new_folio); 4995 /* huge_ptep of dst_pte won't change as in child */ 4996 goto again; 4997 } 4998 hugetlb_install_folio(dst_vma, dst_pte, addr, 4999 new_folio, src_pte_old, sz); 5000 goto next; 5001 } 5002 5003 if (cow) { 5004 /* 5005 * No need to notify as we are downgrading page 5006 * table protection not changing it to point 5007 * to a new page. 5008 * 5009 * See Documentation/mm/mmu_notifier.rst 5010 */ 5011 huge_ptep_set_wrprotect(src, addr, src_pte); 5012 entry = huge_pte_wrprotect(entry); 5013 } 5014 5015 if (!userfaultfd_wp(dst_vma)) 5016 entry = huge_pte_clear_uffd_wp(entry); 5017 5018 set_huge_pte_at(dst, addr, dst_pte, entry, sz); 5019 hugetlb_count_add(npages, dst); 5020 } 5021 5022 next: 5023 spin_unlock(src_ptl); 5024 spin_unlock(dst_ptl); 5025 } 5026 5027 if (cow) { 5028 raw_write_seqcount_end(&src->write_protect_seq); 5029 mmu_notifier_invalidate_range_end(&range); 5030 } else { 5031 hugetlb_vma_unlock_read(src_vma); 5032 } 5033 5034 return ret; 5035 } 5036 5037 static void move_huge_pte(struct vm_area_struct *vma, unsigned long old_addr, 5038 unsigned long new_addr, pte_t *src_pte, pte_t *dst_pte, 5039 unsigned long sz) 5040 { 5041 bool need_clear_uffd_wp = vma_has_uffd_without_event_remap(vma); 5042 struct hstate *h = hstate_vma(vma); 5043 struct mm_struct *mm = vma->vm_mm; 5044 spinlock_t *src_ptl, *dst_ptl; 5045 pte_t pte; 5046 5047 dst_ptl = huge_pte_lock(h, mm, dst_pte); 5048 src_ptl = huge_pte_lockptr(h, mm, src_pte); 5049 5050 /* 5051 * We don't have to worry about the ordering of src and dst ptlocks 5052 * because exclusive mmap_lock (or the i_mmap_lock) prevents deadlock. 5053 */ 5054 if (src_ptl != dst_ptl) 5055 spin_lock_nested(src_ptl, SINGLE_DEPTH_NESTING); 5056 5057 pte = huge_ptep_get_and_clear(mm, old_addr, src_pte, sz); 5058 5059 if (need_clear_uffd_wp && pte_is_uffd_wp_marker(pte)) { 5060 huge_pte_clear(mm, new_addr, dst_pte, sz); 5061 } else { 5062 if (need_clear_uffd_wp) { 5063 if (pte_present(pte)) 5064 pte = huge_pte_clear_uffd_wp(pte); 5065 else 5066 pte = pte_swp_clear_uffd_wp(pte); 5067 } 5068 set_huge_pte_at(mm, new_addr, dst_pte, pte, sz); 5069 } 5070 5071 if (src_ptl != dst_ptl) 5072 spin_unlock(src_ptl); 5073 spin_unlock(dst_ptl); 5074 } 5075 5076 int move_hugetlb_page_tables(struct vm_area_struct *vma, 5077 struct vm_area_struct *new_vma, 5078 unsigned long old_addr, unsigned long new_addr, 5079 unsigned long len) 5080 { 5081 struct hstate *h = hstate_vma(vma); 5082 struct address_space *mapping = vma->vm_file->f_mapping; 5083 unsigned long sz = huge_page_size(h); 5084 struct mm_struct *mm = vma->vm_mm; 5085 unsigned long old_end = old_addr + len; 5086 unsigned long last_addr_mask; 5087 pte_t *src_pte, *dst_pte; 5088 struct mmu_notifier_range range; 5089 struct mmu_gather tlb; 5090 5091 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm, old_addr, 5092 old_end); 5093 adjust_range_if_pmd_sharing_possible(vma, &range.start, &range.end); 5094 /* 5095 * In case of shared PMDs, we should cover the maximum possible 5096 * range. 5097 */ 5098 flush_cache_range(vma, range.start, range.end); 5099 tlb_gather_mmu_vma(&tlb, vma); 5100 5101 mmu_notifier_invalidate_range_start(&range); 5102 last_addr_mask = hugetlb_mask_last_page(h); 5103 /* Prevent race with file truncation */ 5104 hugetlb_vma_lock_write(vma); 5105 i_mmap_lock_write(mapping); 5106 for (; old_addr < old_end; old_addr += sz, new_addr += sz) { 5107 src_pte = hugetlb_walk(vma, old_addr, sz); 5108 if (!src_pte) { 5109 old_addr |= last_addr_mask; 5110 new_addr |= last_addr_mask; 5111 continue; 5112 } 5113 if (huge_pte_none(huge_ptep_get(mm, old_addr, src_pte))) 5114 continue; 5115 5116 if (huge_pmd_unshare(&tlb, vma, old_addr, src_pte)) { 5117 old_addr |= last_addr_mask; 5118 new_addr |= last_addr_mask; 5119 continue; 5120 } 5121 5122 dst_pte = huge_pte_alloc(mm, new_vma, new_addr, sz); 5123 if (!dst_pte) 5124 break; 5125 5126 move_huge_pte(vma, old_addr, new_addr, src_pte, dst_pte, sz); 5127 tlb_remove_huge_tlb_entry(h, &tlb, src_pte, old_addr); 5128 } 5129 5130 tlb_flush_mmu_tlbonly(&tlb); 5131 huge_pmd_unshare_flush(&tlb, vma); 5132 5133 mmu_notifier_invalidate_range_end(&range); 5134 i_mmap_unlock_write(mapping); 5135 hugetlb_vma_unlock_write(vma); 5136 tlb_finish_mmu(&tlb); 5137 5138 return len + old_addr - old_end; 5139 } 5140 5141 void __unmap_hugepage_range(struct mmu_gather *tlb, struct vm_area_struct *vma, 5142 unsigned long start, unsigned long end, 5143 struct folio *folio, zap_flags_t zap_flags) 5144 { 5145 struct mm_struct *mm = vma->vm_mm; 5146 const bool folio_provided = !!folio; 5147 unsigned long address; 5148 pte_t *ptep; 5149 pte_t pte; 5150 spinlock_t *ptl; 5151 struct hstate *h = hstate_vma(vma); 5152 unsigned long sz = huge_page_size(h); 5153 bool adjust_reservation; 5154 unsigned long last_addr_mask; 5155 5156 WARN_ON(!is_vm_hugetlb_page(vma)); 5157 BUG_ON(start & ~huge_page_mask(h)); 5158 BUG_ON(end & ~huge_page_mask(h)); 5159 5160 /* 5161 * This is a hugetlb vma, all the pte entries should point 5162 * to huge page. 5163 */ 5164 tlb_change_page_size(tlb, sz); 5165 tlb_start_vma(tlb, vma); 5166 5167 last_addr_mask = hugetlb_mask_last_page(h); 5168 address = start; 5169 for (; address < end; address += sz) { 5170 ptep = hugetlb_walk(vma, address, sz); 5171 if (!ptep) { 5172 address |= last_addr_mask; 5173 continue; 5174 } 5175 5176 ptl = huge_pte_lock(h, mm, ptep); 5177 if (huge_pmd_unshare(tlb, vma, address, ptep)) { 5178 spin_unlock(ptl); 5179 address |= last_addr_mask; 5180 continue; 5181 } 5182 5183 pte = huge_ptep_get(mm, address, ptep); 5184 if (huge_pte_none(pte)) { 5185 spin_unlock(ptl); 5186 continue; 5187 } 5188 5189 /* 5190 * Migrating hugepage or HWPoisoned hugepage is already 5191 * unmapped and its refcount is dropped, so just clear pte here. 5192 */ 5193 if (unlikely(!pte_present(pte))) { 5194 /* 5195 * If the pte was wr-protected by uffd-wp in any of the 5196 * swap forms, meanwhile the caller does not want to 5197 * drop the uffd-wp bit in this zap, then replace the 5198 * pte with a marker. 5199 */ 5200 if (pte_swp_uffd_wp_any(pte) && 5201 !(zap_flags & ZAP_FLAG_DROP_MARKER)) 5202 set_huge_pte_at(mm, address, ptep, 5203 make_pte_marker(PTE_MARKER_UFFD_WP), 5204 sz); 5205 else 5206 huge_pte_clear(mm, address, ptep, sz); 5207 spin_unlock(ptl); 5208 continue; 5209 } 5210 5211 /* 5212 * If a folio is supplied, it is because a specific 5213 * folio is being unmapped, not a range. Ensure the folio we 5214 * are about to unmap is the actual folio of interest. 5215 */ 5216 if (folio_provided) { 5217 if (folio != page_folio(pte_page(pte))) { 5218 spin_unlock(ptl); 5219 continue; 5220 } 5221 /* 5222 * Mark the VMA as having unmapped its page so that 5223 * future faults in this VMA will fail rather than 5224 * looking like data was lost 5225 */ 5226 set_vma_resv_flags(vma, HPAGE_RESV_UNMAPPED); 5227 } else { 5228 folio = page_folio(pte_page(pte)); 5229 } 5230 5231 pte = huge_ptep_get_and_clear(mm, address, ptep, sz); 5232 tlb_remove_huge_tlb_entry(h, tlb, ptep, address); 5233 if (huge_pte_dirty(pte)) 5234 folio_mark_dirty(folio); 5235 /* Leave a uffd-wp pte marker if needed */ 5236 if (huge_pte_uffd_wp(pte) && 5237 !(zap_flags & ZAP_FLAG_DROP_MARKER)) 5238 set_huge_pte_at(mm, address, ptep, 5239 make_pte_marker(PTE_MARKER_UFFD_WP), 5240 sz); 5241 hugetlb_count_sub(pages_per_huge_page(h), mm); 5242 hugetlb_remove_rmap(folio); 5243 spin_unlock(ptl); 5244 5245 /* 5246 * Restore the reservation for anonymous page, otherwise the 5247 * backing page could be stolen by someone. 5248 * If there we are freeing a surplus, do not set the restore 5249 * reservation bit. 5250 */ 5251 adjust_reservation = false; 5252 5253 spin_lock_irq(&hugetlb_lock); 5254 if (!h->surplus_huge_pages && __vma_private_lock(vma) && 5255 folio_test_anon(folio)) { 5256 folio_set_hugetlb_restore_reserve(folio); 5257 /* Reservation to be adjusted after the spin lock */ 5258 adjust_reservation = true; 5259 } 5260 spin_unlock_irq(&hugetlb_lock); 5261 5262 /* 5263 * Adjust the reservation for the region that will have the 5264 * reserve restored. Keep in mind that vma_needs_reservation() changes 5265 * resv->adds_in_progress if it succeeds. If this is not done, 5266 * do_exit() will not see it, and will keep the reservation 5267 * forever. 5268 */ 5269 if (adjust_reservation) { 5270 int rc = vma_needs_reservation(h, vma, address); 5271 5272 if (rc < 0) 5273 /* Pressumably allocate_file_region_entries failed 5274 * to allocate a file_region struct. Clear 5275 * hugetlb_restore_reserve so that global reserve 5276 * count will not be incremented by free_huge_folio. 5277 * Act as if we consumed the reservation. 5278 */ 5279 folio_clear_hugetlb_restore_reserve(folio); 5280 else if (rc) 5281 vma_add_reservation(h, vma, address); 5282 } 5283 5284 tlb_remove_page_size(tlb, folio_page(folio, 0), 5285 folio_size(folio)); 5286 /* 5287 * If we were instructed to unmap a specific folio, we're done. 5288 */ 5289 if (folio_provided) 5290 break; 5291 } 5292 tlb_end_vma(tlb, vma); 5293 5294 huge_pmd_unshare_flush(tlb, vma); 5295 } 5296 5297 void __hugetlb_zap_begin(struct vm_area_struct *vma, 5298 unsigned long *start, unsigned long *end) 5299 { 5300 if (!vma->vm_file) /* hugetlbfs_file_mmap error */ 5301 return; 5302 5303 adjust_range_if_pmd_sharing_possible(vma, start, end); 5304 hugetlb_vma_lock_write(vma); 5305 if (vma->vm_file) 5306 i_mmap_lock_write(vma->vm_file->f_mapping); 5307 } 5308 5309 void __hugetlb_zap_end(struct vm_area_struct *vma, 5310 struct zap_details *details) 5311 { 5312 zap_flags_t zap_flags = details ? details->zap_flags : 0; 5313 5314 if (!vma->vm_file) /* hugetlbfs_file_mmap error */ 5315 return; 5316 5317 if (zap_flags & ZAP_FLAG_UNMAP) { /* final unmap */ 5318 /* 5319 * Unlock and free the vma lock before releasing i_mmap_rwsem. 5320 * When the vma_lock is freed, this makes the vma ineligible 5321 * for pmd sharing. And, i_mmap_rwsem is required to set up 5322 * pmd sharing. This is important as page tables for this 5323 * unmapped range will be asynchrously deleted. If the page 5324 * tables are shared, there will be issues when accessed by 5325 * someone else. 5326 */ 5327 __hugetlb_vma_unlock_write_free(vma); 5328 } else { 5329 hugetlb_vma_unlock_write(vma); 5330 } 5331 5332 if (vma->vm_file) 5333 i_mmap_unlock_write(vma->vm_file->f_mapping); 5334 } 5335 5336 void unmap_hugepage_range(struct vm_area_struct *vma, unsigned long start, 5337 unsigned long end, struct folio *folio, 5338 zap_flags_t zap_flags) 5339 { 5340 struct mmu_notifier_range range; 5341 struct mmu_gather tlb; 5342 5343 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, vma->vm_mm, 5344 start, end); 5345 adjust_range_if_pmd_sharing_possible(vma, &range.start, &range.end); 5346 mmu_notifier_invalidate_range_start(&range); 5347 tlb_gather_mmu(&tlb, vma->vm_mm); 5348 5349 __unmap_hugepage_range(&tlb, vma, start, end, 5350 folio, zap_flags); 5351 5352 mmu_notifier_invalidate_range_end(&range); 5353 tlb_finish_mmu(&tlb); 5354 } 5355 5356 /* 5357 * This is called when the original mapper is failing to COW a MAP_PRIVATE 5358 * mapping it owns the reserve page for. The intention is to unmap the page 5359 * from other VMAs and let the children be SIGKILLed if they are faulting the 5360 * same region. 5361 */ 5362 static void unmap_ref_private(struct mm_struct *mm, struct vm_area_struct *vma, 5363 struct folio *folio, unsigned long address) 5364 { 5365 struct hstate *h = hstate_vma(vma); 5366 struct vm_area_struct *iter_vma; 5367 struct address_space *mapping; 5368 pgoff_t pgoff; 5369 5370 /* 5371 * vm_pgoff is in PAGE_SIZE units, hence the different calculation 5372 * from page cache lookup which is in HPAGE_SIZE units. 5373 */ 5374 address = address & huge_page_mask(h); 5375 pgoff = ((address - vma->vm_start) >> PAGE_SHIFT) + 5376 vma->vm_pgoff; 5377 mapping = vma->vm_file->f_mapping; 5378 5379 /* 5380 * Take the mapping lock for the duration of the table walk. As 5381 * this mapping should be shared between all the VMAs, 5382 * __unmap_hugepage_range() is called as the lock is already held 5383 */ 5384 i_mmap_lock_write(mapping); 5385 vma_interval_tree_foreach(iter_vma, &mapping->i_mmap, pgoff, pgoff) { 5386 /* Do not unmap the current VMA */ 5387 if (iter_vma == vma) 5388 continue; 5389 5390 /* 5391 * Shared VMAs have their own reserves and do not affect 5392 * MAP_PRIVATE accounting but it is possible that a shared 5393 * VMA is using the same page so check and skip such VMAs. 5394 */ 5395 if (iter_vma->vm_flags & VM_MAYSHARE) 5396 continue; 5397 5398 /* 5399 * Unmap the page from other VMAs without their own reserves. 5400 * They get marked to be SIGKILLed if they fault in these 5401 * areas. This is because a future no-page fault on this VMA 5402 * could insert a zeroed page instead of the data existing 5403 * from the time of fork. This would look like data corruption 5404 */ 5405 if (!is_vma_resv_set(iter_vma, HPAGE_RESV_OWNER)) 5406 unmap_hugepage_range(iter_vma, address, 5407 address + huge_page_size(h), 5408 folio, 0); 5409 } 5410 i_mmap_unlock_write(mapping); 5411 } 5412 5413 /* 5414 * hugetlb_wp() should be called with page lock of the original hugepage held. 5415 * Called with hugetlb_fault_mutex_table held and pte_page locked so we 5416 * cannot race with other handlers or page migration. 5417 * Keep the pte_same checks anyway to make transition from the mutex easier. 5418 */ 5419 static vm_fault_t hugetlb_wp(struct vm_fault *vmf) 5420 { 5421 struct vm_area_struct *vma = vmf->vma; 5422 struct mm_struct *mm = vma->vm_mm; 5423 const bool unshare = vmf->flags & FAULT_FLAG_UNSHARE; 5424 pte_t pte = huge_ptep_get(mm, vmf->address, vmf->pte); 5425 struct hstate *h = hstate_vma(vma); 5426 struct folio *old_folio; 5427 struct folio *new_folio; 5428 bool cow_from_owner = 0; 5429 vm_fault_t ret = 0; 5430 struct mmu_notifier_range range; 5431 5432 /* 5433 * Never handle CoW for uffd-wp protected pages. It should be only 5434 * handled when the uffd-wp protection is removed. 5435 * 5436 * Note that only the CoW optimization path (in hugetlb_no_page()) 5437 * can trigger this, because hugetlb_fault() will always resolve 5438 * uffd-wp bit first. 5439 */ 5440 if (!unshare && huge_pte_uffd_wp(pte)) 5441 return 0; 5442 5443 /* Let's take out MAP_SHARED mappings first. */ 5444 if (vma->vm_flags & VM_MAYSHARE) { 5445 set_huge_ptep_writable(vma, vmf->address, vmf->pte); 5446 return 0; 5447 } 5448 5449 old_folio = page_folio(pte_page(pte)); 5450 5451 delayacct_wpcopy_start(); 5452 5453 retry_avoidcopy: 5454 /* 5455 * If no-one else is actually using this page, we're the exclusive 5456 * owner and can reuse this page. 5457 * 5458 * Note that we don't rely on the (safer) folio refcount here, because 5459 * copying the hugetlb folio when there are unexpected (temporary) 5460 * folio references could harm simple fork()+exit() users when 5461 * we run out of free hugetlb folios: we would have to kill processes 5462 * in scenarios that used to work. As a side effect, there can still 5463 * be leaks between processes, for example, with FOLL_GET users. 5464 */ 5465 if (folio_mapcount(old_folio) == 1 && folio_test_anon(old_folio)) { 5466 if (!PageAnonExclusive(&old_folio->page)) { 5467 folio_move_anon_rmap(old_folio, vma); 5468 SetPageAnonExclusive(&old_folio->page); 5469 } 5470 if (likely(!unshare)) 5471 set_huge_ptep_maybe_writable(vma, vmf->address, 5472 vmf->pte); 5473 5474 delayacct_wpcopy_end(); 5475 return 0; 5476 } 5477 VM_BUG_ON_PAGE(folio_test_anon(old_folio) && 5478 PageAnonExclusive(&old_folio->page), &old_folio->page); 5479 5480 /* 5481 * If the process that created a MAP_PRIVATE mapping is about to perform 5482 * a COW due to a shared page count, attempt to satisfy the allocation 5483 * without using the existing reserves. 5484 * In order to determine where this is a COW on a MAP_PRIVATE mapping it 5485 * is enough to check whether the old_folio is anonymous. This means that 5486 * the reserve for this address was consumed. If reserves were used, a 5487 * partial faulted mapping at the fime of fork() could consume its reserves 5488 * on COW instead of the full address range. 5489 */ 5490 if (is_vma_resv_set(vma, HPAGE_RESV_OWNER) && 5491 folio_test_anon(old_folio)) 5492 cow_from_owner = true; 5493 5494 folio_get(old_folio); 5495 5496 /* 5497 * Drop page table lock as buddy allocator may be called. It will 5498 * be acquired again before returning to the caller, as expected. 5499 */ 5500 spin_unlock(vmf->ptl); 5501 new_folio = alloc_hugetlb_folio(vma, vmf->address, cow_from_owner); 5502 5503 if (IS_ERR(new_folio)) { 5504 /* 5505 * If a process owning a MAP_PRIVATE mapping fails to COW, 5506 * it is due to references held by a child and an insufficient 5507 * huge page pool. To guarantee the original mappers 5508 * reliability, unmap the page from child processes. The child 5509 * may get SIGKILLed if it later faults. 5510 */ 5511 if (cow_from_owner) { 5512 struct address_space *mapping = vma->vm_file->f_mapping; 5513 pgoff_t idx; 5514 u32 hash; 5515 5516 folio_put(old_folio); 5517 /* 5518 * Drop hugetlb_fault_mutex and vma_lock before 5519 * unmapping. unmapping needs to hold vma_lock 5520 * in write mode. Dropping vma_lock in read mode 5521 * here is OK as COW mappings do not interact with 5522 * PMD sharing. 5523 * 5524 * Reacquire both after unmap operation. 5525 */ 5526 idx = vma_hugecache_offset(h, vma, vmf->address); 5527 hash = hugetlb_fault_mutex_hash(mapping, idx); 5528 hugetlb_vma_unlock_read(vma); 5529 mutex_unlock(&hugetlb_fault_mutex_table[hash]); 5530 5531 unmap_ref_private(mm, vma, old_folio, vmf->address); 5532 5533 mutex_lock(&hugetlb_fault_mutex_table[hash]); 5534 hugetlb_vma_lock_read(vma); 5535 spin_lock(vmf->ptl); 5536 vmf->pte = hugetlb_walk(vma, vmf->address, 5537 huge_page_size(h)); 5538 if (likely(vmf->pte && 5539 pte_same(huge_ptep_get(mm, vmf->address, vmf->pte), pte))) 5540 goto retry_avoidcopy; 5541 /* 5542 * race occurs while re-acquiring page table 5543 * lock, and our job is done. 5544 */ 5545 delayacct_wpcopy_end(); 5546 return 0; 5547 } 5548 5549 ret = vmf_error(PTR_ERR(new_folio)); 5550 goto out_release_old; 5551 } 5552 5553 /* 5554 * When the original hugepage is shared one, it does not have 5555 * anon_vma prepared. 5556 */ 5557 ret = __vmf_anon_prepare(vmf); 5558 if (unlikely(ret)) 5559 goto out_release_all; 5560 5561 if (copy_user_large_folio(new_folio, old_folio, vmf->real_address, vma)) { 5562 ret = VM_FAULT_HWPOISON_LARGE | VM_FAULT_SET_HINDEX(hstate_index(h)); 5563 goto out_release_all; 5564 } 5565 __folio_mark_uptodate(new_folio); 5566 5567 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm, vmf->address, 5568 vmf->address + huge_page_size(h)); 5569 mmu_notifier_invalidate_range_start(&range); 5570 5571 /* 5572 * Retake the page table lock to check for racing updates 5573 * before the page tables are altered 5574 */ 5575 spin_lock(vmf->ptl); 5576 vmf->pte = hugetlb_walk(vma, vmf->address, huge_page_size(h)); 5577 if (likely(vmf->pte && pte_same(huge_ptep_get(mm, vmf->address, vmf->pte), pte))) { 5578 pte_t newpte = make_huge_pte(vma, new_folio, !unshare); 5579 5580 /* Break COW or unshare */ 5581 huge_ptep_clear_flush(vma, vmf->address, vmf->pte); 5582 hugetlb_remove_rmap(old_folio); 5583 hugetlb_add_new_anon_rmap(new_folio, vma, vmf->address); 5584 if (huge_pte_uffd_wp(pte)) 5585 newpte = huge_pte_mkuffd_wp(newpte); 5586 set_huge_pte_at(mm, vmf->address, vmf->pte, newpte, 5587 huge_page_size(h)); 5588 folio_set_hugetlb_migratable(new_folio); 5589 /* Make the old page be freed below */ 5590 new_folio = old_folio; 5591 } 5592 spin_unlock(vmf->ptl); 5593 mmu_notifier_invalidate_range_end(&range); 5594 out_release_all: 5595 /* 5596 * No restore in case of successful pagetable update (Break COW or 5597 * unshare) 5598 */ 5599 if (new_folio != old_folio) 5600 restore_reserve_on_error(h, vma, vmf->address, new_folio); 5601 folio_put(new_folio); 5602 out_release_old: 5603 folio_put(old_folio); 5604 5605 spin_lock(vmf->ptl); /* Caller expects lock to be held */ 5606 5607 delayacct_wpcopy_end(); 5608 return ret; 5609 } 5610 5611 /* 5612 * Return whether there is a pagecache page to back given address within VMA. 5613 */ 5614 bool hugetlbfs_pagecache_present(struct hstate *h, 5615 struct vm_area_struct *vma, unsigned long address) 5616 { 5617 struct address_space *mapping = vma->vm_file->f_mapping; 5618 pgoff_t idx = linear_page_index(vma, address); 5619 struct folio *folio; 5620 5621 folio = filemap_get_folio(mapping, idx); 5622 if (IS_ERR(folio)) 5623 return false; 5624 folio_put(folio); 5625 return true; 5626 } 5627 5628 int hugetlb_add_to_page_cache(struct folio *folio, struct address_space *mapping, 5629 pgoff_t idx) 5630 { 5631 struct inode *inode = mapping->host; 5632 struct hstate *h = hstate_inode(inode); 5633 int err; 5634 5635 idx <<= huge_page_order(h); 5636 __folio_set_locked(folio); 5637 err = __filemap_add_folio(mapping, folio, idx, GFP_KERNEL, NULL); 5638 5639 if (unlikely(err)) { 5640 __folio_clear_locked(folio); 5641 return err; 5642 } 5643 folio_clear_hugetlb_restore_reserve(folio); 5644 5645 /* 5646 * mark folio dirty so that it will not be removed from cache/file 5647 * by non-hugetlbfs specific code paths. 5648 */ 5649 folio_mark_dirty(folio); 5650 5651 spin_lock(&inode->i_lock); 5652 inode->i_blocks += blocks_per_huge_page(h); 5653 spin_unlock(&inode->i_lock); 5654 return 0; 5655 } 5656 5657 static inline vm_fault_t hugetlb_handle_userfault(struct vm_fault *vmf, 5658 struct address_space *mapping, 5659 unsigned long reason) 5660 { 5661 u32 hash; 5662 5663 /* 5664 * vma_lock and hugetlb_fault_mutex must be dropped before handling 5665 * userfault. Also mmap_lock could be dropped due to handling 5666 * userfault, any vma operation should be careful from here. 5667 */ 5668 hugetlb_vma_unlock_read(vmf->vma); 5669 hash = hugetlb_fault_mutex_hash(mapping, vmf->pgoff); 5670 mutex_unlock(&hugetlb_fault_mutex_table[hash]); 5671 return handle_userfault(vmf, reason); 5672 } 5673 5674 /* 5675 * Recheck pte with pgtable lock. Returns true if pte didn't change, or 5676 * false if pte changed or is changing. 5677 */ 5678 static bool hugetlb_pte_stable(struct hstate *h, struct mm_struct *mm, unsigned long addr, 5679 pte_t *ptep, pte_t old_pte) 5680 { 5681 spinlock_t *ptl; 5682 bool same; 5683 5684 ptl = huge_pte_lock(h, mm, ptep); 5685 same = pte_same(huge_ptep_get(mm, addr, ptep), old_pte); 5686 spin_unlock(ptl); 5687 5688 return same; 5689 } 5690 5691 static vm_fault_t hugetlb_no_page(struct address_space *mapping, 5692 struct vm_fault *vmf) 5693 { 5694 u32 hash = hugetlb_fault_mutex_hash(mapping, vmf->pgoff); 5695 bool new_folio, new_anon_folio = false; 5696 struct vm_area_struct *vma = vmf->vma; 5697 struct mm_struct *mm = vma->vm_mm; 5698 struct hstate *h = hstate_vma(vma); 5699 vm_fault_t ret = VM_FAULT_SIGBUS; 5700 bool folio_locked = true; 5701 struct folio *folio; 5702 unsigned long size; 5703 pte_t new_pte; 5704 5705 /* 5706 * Currently, we are forced to kill the process in the event the 5707 * original mapper has unmapped pages from the child due to a failed 5708 * COW/unsharing. Warn that such a situation has occurred as it may not 5709 * be obvious. 5710 */ 5711 if (is_vma_resv_set(vma, HPAGE_RESV_UNMAPPED)) { 5712 pr_warn_ratelimited("PID %d killed due to inadequate hugepage pool\n", 5713 current->pid); 5714 goto out; 5715 } 5716 5717 /* 5718 * Use page lock to guard against racing truncation 5719 * before we get page_table_lock. 5720 */ 5721 new_folio = false; 5722 folio = filemap_lock_hugetlb_folio(h, mapping, vmf->pgoff); 5723 if (IS_ERR(folio)) { 5724 size = i_size_read(mapping->host) >> huge_page_shift(h); 5725 if (vmf->pgoff >= size) 5726 goto out; 5727 /* Check for page in userfault range */ 5728 if (userfaultfd_missing(vma)) { 5729 /* 5730 * Since hugetlb_no_page() was examining pte 5731 * without pgtable lock, we need to re-test under 5732 * lock because the pte may not be stable and could 5733 * have changed from under us. Try to detect 5734 * either changed or during-changing ptes and retry 5735 * properly when needed. 5736 * 5737 * Note that userfaultfd is actually fine with 5738 * false positives (e.g. caused by pte changed), 5739 * but not wrong logical events (e.g. caused by 5740 * reading a pte during changing). The latter can 5741 * confuse the userspace, so the strictness is very 5742 * much preferred. E.g., MISSING event should 5743 * never happen on the page after UFFDIO_COPY has 5744 * correctly installed the page and returned. 5745 */ 5746 if (!hugetlb_pte_stable(h, mm, vmf->address, vmf->pte, vmf->orig_pte)) { 5747 ret = 0; 5748 goto out; 5749 } 5750 5751 return hugetlb_handle_userfault(vmf, mapping, 5752 VM_UFFD_MISSING); 5753 } 5754 5755 if (!(vma->vm_flags & VM_MAYSHARE)) { 5756 ret = __vmf_anon_prepare(vmf); 5757 if (unlikely(ret)) 5758 goto out; 5759 } 5760 5761 folio = alloc_hugetlb_folio(vma, vmf->address, false); 5762 if (IS_ERR(folio)) { 5763 /* 5764 * Returning error will result in faulting task being 5765 * sent SIGBUS. The hugetlb fault mutex prevents two 5766 * tasks from racing to fault in the same page which 5767 * could result in false unable to allocate errors. 5768 * Page migration does not take the fault mutex, but 5769 * does a clear then write of pte's under page table 5770 * lock. Page fault code could race with migration, 5771 * notice the clear pte and try to allocate a page 5772 * here. Before returning error, get ptl and make 5773 * sure there really is no pte entry. 5774 */ 5775 if (hugetlb_pte_stable(h, mm, vmf->address, vmf->pte, vmf->orig_pte)) 5776 ret = vmf_error(PTR_ERR(folio)); 5777 else 5778 ret = 0; 5779 goto out; 5780 } 5781 folio_zero_user(folio, vmf->real_address); 5782 __folio_mark_uptodate(folio); 5783 new_folio = true; 5784 5785 if (vma->vm_flags & VM_MAYSHARE) { 5786 int err = hugetlb_add_to_page_cache(folio, mapping, 5787 vmf->pgoff); 5788 if (err) { 5789 /* 5790 * err can't be -EEXIST which implies someone 5791 * else consumed the reservation since hugetlb 5792 * fault mutex is held when add a hugetlb page 5793 * to the page cache. So it's safe to call 5794 * restore_reserve_on_error() here. 5795 */ 5796 restore_reserve_on_error(h, vma, vmf->address, 5797 folio); 5798 folio_put(folio); 5799 ret = VM_FAULT_SIGBUS; 5800 goto out; 5801 } 5802 } else { 5803 new_anon_folio = true; 5804 folio_lock(folio); 5805 } 5806 } else { 5807 /* 5808 * If memory error occurs between mmap() and fault, some process 5809 * don't have hwpoisoned swap entry for errored virtual address. 5810 * So we need to block hugepage fault by PG_hwpoison bit check. 5811 */ 5812 if (unlikely(folio_test_hwpoison(folio))) { 5813 ret = VM_FAULT_HWPOISON_LARGE | 5814 VM_FAULT_SET_HINDEX(hstate_index(h)); 5815 goto backout_unlocked; 5816 } 5817 5818 /* Check for page in userfault range. */ 5819 if (userfaultfd_minor(vma)) { 5820 folio_unlock(folio); 5821 folio_put(folio); 5822 /* See comment in userfaultfd_missing() block above */ 5823 if (!hugetlb_pte_stable(h, mm, vmf->address, vmf->pte, vmf->orig_pte)) { 5824 ret = 0; 5825 goto out; 5826 } 5827 return hugetlb_handle_userfault(vmf, mapping, 5828 VM_UFFD_MINOR); 5829 } 5830 } 5831 5832 /* 5833 * If we are going to COW a private mapping later, we examine the 5834 * pending reservations for this page now. This will ensure that 5835 * any allocations necessary to record that reservation occur outside 5836 * the spinlock. 5837 */ 5838 if ((vmf->flags & FAULT_FLAG_WRITE) && !(vma->vm_flags & VM_SHARED)) { 5839 if (vma_needs_reservation(h, vma, vmf->address) < 0) { 5840 ret = VM_FAULT_OOM; 5841 goto backout_unlocked; 5842 } 5843 /* Just decrements count, does not deallocate */ 5844 vma_end_reservation(h, vma, vmf->address); 5845 } 5846 5847 vmf->ptl = huge_pte_lock(h, mm, vmf->pte); 5848 ret = 0; 5849 /* If pte changed from under us, retry */ 5850 if (!pte_same(huge_ptep_get(mm, vmf->address, vmf->pte), vmf->orig_pte)) 5851 goto backout; 5852 5853 if (new_anon_folio) 5854 hugetlb_add_new_anon_rmap(folio, vma, vmf->address); 5855 else 5856 hugetlb_add_file_rmap(folio); 5857 new_pte = make_huge_pte(vma, folio, vma->vm_flags & VM_SHARED); 5858 /* 5859 * If this pte was previously wr-protected, keep it wr-protected even 5860 * if populated. 5861 */ 5862 if (unlikely(pte_is_uffd_wp_marker(vmf->orig_pte))) 5863 new_pte = huge_pte_mkuffd_wp(new_pte); 5864 set_huge_pte_at(mm, vmf->address, vmf->pte, new_pte, huge_page_size(h)); 5865 5866 hugetlb_count_add(pages_per_huge_page(h), mm); 5867 if ((vmf->flags & FAULT_FLAG_WRITE) && !(vma->vm_flags & VM_SHARED)) { 5868 /* 5869 * No need to keep file folios locked. See comment in 5870 * hugetlb_fault(). 5871 */ 5872 if (!new_anon_folio) { 5873 folio_locked = false; 5874 folio_unlock(folio); 5875 } 5876 /* Optimization, do the COW without a second fault */ 5877 ret = hugetlb_wp(vmf); 5878 } 5879 5880 spin_unlock(vmf->ptl); 5881 5882 /* 5883 * Only set hugetlb_migratable in newly allocated pages. Existing pages 5884 * found in the pagecache may not have hugetlb_migratable if they have 5885 * been isolated for migration. 5886 */ 5887 if (new_folio) 5888 folio_set_hugetlb_migratable(folio); 5889 5890 if (folio_locked) 5891 folio_unlock(folio); 5892 out: 5893 hugetlb_vma_unlock_read(vma); 5894 5895 /* 5896 * We must check to release the per-VMA lock. __vmf_anon_prepare() is 5897 * the only way ret can be set to VM_FAULT_RETRY. 5898 */ 5899 if (unlikely(ret & VM_FAULT_RETRY)) 5900 vma_end_read(vma); 5901 5902 mutex_unlock(&hugetlb_fault_mutex_table[hash]); 5903 return ret; 5904 5905 backout: 5906 spin_unlock(vmf->ptl); 5907 backout_unlocked: 5908 /* We only need to restore reservations for private mappings */ 5909 if (new_anon_folio) 5910 restore_reserve_on_error(h, vma, vmf->address, folio); 5911 5912 folio_unlock(folio); 5913 folio_put(folio); 5914 goto out; 5915 } 5916 5917 #ifdef CONFIG_SMP 5918 u32 hugetlb_fault_mutex_hash(struct address_space *mapping, pgoff_t idx) 5919 { 5920 unsigned long key[2]; 5921 u32 hash; 5922 5923 key[0] = (unsigned long) mapping; 5924 key[1] = idx; 5925 5926 hash = jhash2((u32 *)&key, sizeof(key)/(sizeof(u32)), 0); 5927 5928 return hash & (num_fault_mutexes - 1); 5929 } 5930 #else 5931 /* 5932 * For uniprocessor systems we always use a single mutex, so just 5933 * return 0 and avoid the hashing overhead. 5934 */ 5935 u32 hugetlb_fault_mutex_hash(struct address_space *mapping, pgoff_t idx) 5936 { 5937 return 0; 5938 } 5939 #endif 5940 5941 vm_fault_t hugetlb_fault(struct mm_struct *mm, struct vm_area_struct *vma, 5942 unsigned long address, unsigned int flags) 5943 { 5944 vm_fault_t ret; 5945 u32 hash; 5946 struct folio *folio = NULL; 5947 struct hstate *h = hstate_vma(vma); 5948 struct address_space *mapping; 5949 bool need_wait_lock = false; 5950 struct vm_fault vmf = { 5951 .vma = vma, 5952 .address = address & huge_page_mask(h), 5953 .real_address = address, 5954 .flags = flags, 5955 .pgoff = vma_hugecache_offset(h, vma, 5956 address & huge_page_mask(h)), 5957 /* TODO: Track hugetlb faults using vm_fault */ 5958 5959 /* 5960 * Some fields may not be initialized, be careful as it may 5961 * be hard to debug if called functions make assumptions 5962 */ 5963 }; 5964 5965 /* 5966 * Serialize hugepage allocation and instantiation, so that we don't 5967 * get spurious allocation failures if two CPUs race to instantiate 5968 * the same page in the page cache. 5969 */ 5970 mapping = vma->vm_file->f_mapping; 5971 hash = hugetlb_fault_mutex_hash(mapping, vmf.pgoff); 5972 mutex_lock(&hugetlb_fault_mutex_table[hash]); 5973 5974 /* 5975 * Acquire vma lock before calling huge_pte_alloc and hold 5976 * until finished with vmf.pte. This prevents huge_pmd_unshare from 5977 * being called elsewhere and making the vmf.pte no longer valid. 5978 */ 5979 hugetlb_vma_lock_read(vma); 5980 vmf.pte = huge_pte_alloc(mm, vma, vmf.address, huge_page_size(h)); 5981 if (!vmf.pte) { 5982 hugetlb_vma_unlock_read(vma); 5983 mutex_unlock(&hugetlb_fault_mutex_table[hash]); 5984 return VM_FAULT_OOM; 5985 } 5986 5987 vmf.orig_pte = huge_ptep_get(mm, vmf.address, vmf.pte); 5988 if (huge_pte_none(vmf.orig_pte)) 5989 /* 5990 * hugetlb_no_page will drop vma lock and hugetlb fault 5991 * mutex internally, which make us return immediately. 5992 */ 5993 return hugetlb_no_page(mapping, &vmf); 5994 5995 if (pte_is_marker(vmf.orig_pte)) { 5996 const pte_marker marker = 5997 softleaf_to_marker(softleaf_from_pte(vmf.orig_pte)); 5998 5999 if (marker & PTE_MARKER_POISONED) { 6000 ret = VM_FAULT_HWPOISON_LARGE | 6001 VM_FAULT_SET_HINDEX(hstate_index(h)); 6002 goto out_mutex; 6003 } else if (WARN_ON_ONCE(marker & PTE_MARKER_GUARD)) { 6004 /* This isn't supported in hugetlb. */ 6005 ret = VM_FAULT_SIGSEGV; 6006 goto out_mutex; 6007 } 6008 6009 return hugetlb_no_page(mapping, &vmf); 6010 } 6011 6012 ret = 0; 6013 6014 /* Not present, either a migration or a hwpoisoned entry */ 6015 if (!pte_present(vmf.orig_pte) && !huge_pte_none(vmf.orig_pte)) { 6016 const softleaf_t softleaf = softleaf_from_pte(vmf.orig_pte); 6017 6018 if (softleaf_is_migration(softleaf)) { 6019 /* 6020 * Release the hugetlb fault lock now, but retain 6021 * the vma lock, because it is needed to guard the 6022 * huge_pte_lockptr() later in 6023 * migration_entry_wait_huge(). The vma lock will 6024 * be released there. 6025 */ 6026 mutex_unlock(&hugetlb_fault_mutex_table[hash]); 6027 migration_entry_wait_huge(vma, vmf.address, vmf.pte); 6028 return 0; 6029 } 6030 if (softleaf_is_hwpoison(softleaf)) { 6031 ret = VM_FAULT_HWPOISON_LARGE | 6032 VM_FAULT_SET_HINDEX(hstate_index(h)); 6033 } 6034 6035 goto out_mutex; 6036 } 6037 6038 /* 6039 * If we are going to COW/unshare the mapping later, we examine the 6040 * pending reservations for this page now. This will ensure that any 6041 * allocations necessary to record that reservation occur outside the 6042 * spinlock. 6043 */ 6044 if ((flags & (FAULT_FLAG_WRITE|FAULT_FLAG_UNSHARE)) && 6045 !(vma->vm_flags & VM_MAYSHARE) && !huge_pte_write(vmf.orig_pte)) { 6046 if (vma_needs_reservation(h, vma, vmf.address) < 0) { 6047 ret = VM_FAULT_OOM; 6048 goto out_mutex; 6049 } 6050 /* Just decrements count, does not deallocate */ 6051 vma_end_reservation(h, vma, vmf.address); 6052 } 6053 6054 vmf.ptl = huge_pte_lock(h, mm, vmf.pte); 6055 6056 /* Check for a racing update before calling hugetlb_wp() */ 6057 if (unlikely(!pte_same(vmf.orig_pte, huge_ptep_get(mm, vmf.address, vmf.pte)))) 6058 goto out_ptl; 6059 6060 /* Handle userfault-wp first, before trying to lock more pages */ 6061 if (userfaultfd_wp(vma) && huge_pte_uffd_wp(huge_ptep_get(mm, vmf.address, vmf.pte)) && 6062 (flags & FAULT_FLAG_WRITE) && !huge_pte_write(vmf.orig_pte)) { 6063 if (!userfaultfd_wp_async(vma)) { 6064 spin_unlock(vmf.ptl); 6065 hugetlb_vma_unlock_read(vma); 6066 mutex_unlock(&hugetlb_fault_mutex_table[hash]); 6067 return handle_userfault(&vmf, VM_UFFD_WP); 6068 } 6069 6070 vmf.orig_pte = huge_pte_clear_uffd_wp(vmf.orig_pte); 6071 set_huge_pte_at(mm, vmf.address, vmf.pte, vmf.orig_pte, 6072 huge_page_size(hstate_vma(vma))); 6073 /* Fallthrough to CoW */ 6074 } 6075 6076 if (flags & (FAULT_FLAG_WRITE|FAULT_FLAG_UNSHARE)) { 6077 if (!huge_pte_write(vmf.orig_pte)) { 6078 /* 6079 * Anonymous folios need to be lock since hugetlb_wp() 6080 * checks whether we can re-use the folio exclusively 6081 * for us in case we are the only user of it. 6082 */ 6083 folio = page_folio(pte_page(vmf.orig_pte)); 6084 if (folio_test_anon(folio) && !folio_trylock(folio)) { 6085 need_wait_lock = true; 6086 goto out_ptl; 6087 } 6088 folio_get(folio); 6089 ret = hugetlb_wp(&vmf); 6090 if (folio_test_anon(folio)) 6091 folio_unlock(folio); 6092 folio_put(folio); 6093 goto out_ptl; 6094 } else if (likely(flags & FAULT_FLAG_WRITE)) { 6095 vmf.orig_pte = huge_pte_mkdirty(vmf.orig_pte); 6096 } 6097 } 6098 vmf.orig_pte = pte_mkyoung(vmf.orig_pte); 6099 if (huge_ptep_set_access_flags(vma, vmf.address, vmf.pte, vmf.orig_pte, 6100 flags & FAULT_FLAG_WRITE)) 6101 update_mmu_cache(vma, vmf.address, vmf.pte); 6102 out_ptl: 6103 spin_unlock(vmf.ptl); 6104 out_mutex: 6105 hugetlb_vma_unlock_read(vma); 6106 6107 /* 6108 * We must check to release the per-VMA lock. __vmf_anon_prepare() in 6109 * hugetlb_wp() is the only way ret can be set to VM_FAULT_RETRY. 6110 */ 6111 if (unlikely(ret & VM_FAULT_RETRY)) 6112 vma_end_read(vma); 6113 6114 mutex_unlock(&hugetlb_fault_mutex_table[hash]); 6115 /* 6116 * hugetlb_wp drops all the locks, but the folio lock, before trying to 6117 * unmap the folio from other processes. During that window, if another 6118 * process mapping that folio faults in, it will take the mutex and then 6119 * it will wait on folio_lock, causing an ABBA deadlock. 6120 * Use trylock instead and bail out if we fail. 6121 * 6122 * Ideally, we should hold a refcount on the folio we wait for, but we do 6123 * not want to use the folio after it becomes unlocked, but rather just 6124 * wait for it to become unlocked, so hopefully next fault successes on 6125 * the trylock. 6126 */ 6127 if (need_wait_lock) 6128 folio_wait_locked(folio); 6129 return ret; 6130 } 6131 6132 #ifdef CONFIG_USERFAULTFD 6133 /* 6134 * Can probably be eliminated, but still used by hugetlb_mfill_atomic_pte(). 6135 */ 6136 static struct folio *alloc_hugetlb_folio_vma(struct hstate *h, 6137 struct vm_area_struct *vma, unsigned long address) 6138 { 6139 struct mempolicy *mpol; 6140 nodemask_t *nodemask; 6141 struct folio *folio; 6142 gfp_t gfp_mask; 6143 int node; 6144 6145 gfp_mask = htlb_alloc_mask(h); 6146 node = huge_node(vma, address, gfp_mask, &mpol, &nodemask); 6147 /* 6148 * This is used to allocate a temporary hugetlb to hold the copied 6149 * content, which will then be copied again to the final hugetlb 6150 * consuming a reservation. Set the alloc_fallback to false to indicate 6151 * that breaking the per-node hugetlb pool is not allowed in this case. 6152 */ 6153 folio = alloc_hugetlb_folio_nodemask(h, node, nodemask, gfp_mask, false); 6154 mpol_cond_put(mpol); 6155 6156 return folio; 6157 } 6158 6159 /* 6160 * Used by userfaultfd UFFDIO_* ioctls. Based on userfaultfd's mfill_atomic_pte 6161 * with modifications for hugetlb pages. 6162 */ 6163 int hugetlb_mfill_atomic_pte(pte_t *dst_pte, 6164 struct vm_area_struct *dst_vma, 6165 unsigned long dst_addr, 6166 unsigned long src_addr, 6167 uffd_flags_t flags, 6168 struct folio **foliop) 6169 { 6170 struct mm_struct *dst_mm = dst_vma->vm_mm; 6171 bool is_continue = uffd_flags_mode_is(flags, MFILL_ATOMIC_CONTINUE); 6172 bool wp_enabled = (flags & MFILL_ATOMIC_WP); 6173 struct hstate *h = hstate_vma(dst_vma); 6174 struct address_space *mapping = dst_vma->vm_file->f_mapping; 6175 pgoff_t idx = vma_hugecache_offset(h, dst_vma, dst_addr); 6176 unsigned long size = huge_page_size(h); 6177 int vm_shared = dst_vma->vm_flags & VM_SHARED; 6178 pte_t _dst_pte; 6179 spinlock_t *ptl; 6180 int ret = -ENOMEM; 6181 struct folio *folio; 6182 bool folio_in_pagecache = false; 6183 pte_t dst_ptep; 6184 6185 if (uffd_flags_mode_is(flags, MFILL_ATOMIC_POISON)) { 6186 ptl = huge_pte_lock(h, dst_mm, dst_pte); 6187 6188 /* Don't overwrite any existing PTEs (even markers) */ 6189 if (!huge_pte_none(huge_ptep_get(dst_mm, dst_addr, dst_pte))) { 6190 spin_unlock(ptl); 6191 return -EEXIST; 6192 } 6193 6194 _dst_pte = make_pte_marker(PTE_MARKER_POISONED); 6195 set_huge_pte_at(dst_mm, dst_addr, dst_pte, _dst_pte, size); 6196 6197 /* No need to invalidate - it was non-present before */ 6198 update_mmu_cache(dst_vma, dst_addr, dst_pte); 6199 6200 spin_unlock(ptl); 6201 return 0; 6202 } 6203 6204 if (is_continue) { 6205 ret = -EFAULT; 6206 folio = filemap_lock_hugetlb_folio(h, mapping, idx); 6207 if (IS_ERR(folio)) 6208 goto out; 6209 folio_in_pagecache = true; 6210 } else if (!*foliop) { 6211 /* If a folio already exists, then it's UFFDIO_COPY for 6212 * a non-missing case. Return -EEXIST. 6213 */ 6214 if (vm_shared && 6215 hugetlbfs_pagecache_present(h, dst_vma, dst_addr)) { 6216 ret = -EEXIST; 6217 goto out; 6218 } 6219 6220 folio = alloc_hugetlb_folio(dst_vma, dst_addr, false); 6221 if (IS_ERR(folio)) { 6222 pte_t *actual_pte = hugetlb_walk(dst_vma, dst_addr, PMD_SIZE); 6223 if (actual_pte) { 6224 ret = -EEXIST; 6225 goto out; 6226 } 6227 ret = -ENOMEM; 6228 goto out; 6229 } 6230 6231 ret = copy_folio_from_user(folio, (const void __user *) src_addr, 6232 false); 6233 6234 /* fallback to copy_from_user outside mmap_lock */ 6235 if (unlikely(ret)) { 6236 ret = -ENOENT; 6237 /* Free the allocated folio which may have 6238 * consumed a reservation. 6239 */ 6240 restore_reserve_on_error(h, dst_vma, dst_addr, folio); 6241 folio_put(folio); 6242 6243 /* Allocate a temporary folio to hold the copied 6244 * contents. 6245 */ 6246 folio = alloc_hugetlb_folio_vma(h, dst_vma, dst_addr); 6247 if (!folio) { 6248 ret = -ENOMEM; 6249 goto out; 6250 } 6251 *foliop = folio; 6252 /* Set the outparam foliop and return to the caller to 6253 * copy the contents outside the lock. Don't free the 6254 * folio. 6255 */ 6256 goto out; 6257 } 6258 } else { 6259 if (vm_shared && 6260 hugetlbfs_pagecache_present(h, dst_vma, dst_addr)) { 6261 folio_put(*foliop); 6262 ret = -EEXIST; 6263 *foliop = NULL; 6264 goto out; 6265 } 6266 6267 folio = alloc_hugetlb_folio(dst_vma, dst_addr, false); 6268 if (IS_ERR(folio)) { 6269 folio_put(*foliop); 6270 ret = -ENOMEM; 6271 *foliop = NULL; 6272 goto out; 6273 } 6274 ret = copy_user_large_folio(folio, *foliop, dst_addr, dst_vma); 6275 folio_put(*foliop); 6276 *foliop = NULL; 6277 if (ret) { 6278 restore_reserve_on_error(h, dst_vma, dst_addr, folio); 6279 folio_put(folio); 6280 goto out; 6281 } 6282 } 6283 6284 /* 6285 * If we just allocated a new page, we need a memory barrier to ensure 6286 * that preceding stores to the page become visible before the 6287 * set_pte_at() write. The memory barrier inside __folio_mark_uptodate 6288 * is what we need. 6289 * 6290 * In the case where we have not allocated a new page (is_continue), 6291 * the page must already be uptodate. UFFDIO_CONTINUE already includes 6292 * an earlier smp_wmb() to ensure that prior stores will be visible 6293 * before the set_pte_at() write. 6294 */ 6295 if (!is_continue) 6296 __folio_mark_uptodate(folio); 6297 else 6298 WARN_ON_ONCE(!folio_test_uptodate(folio)); 6299 6300 /* Add shared, newly allocated pages to the page cache. */ 6301 if (vm_shared && !is_continue) { 6302 ret = -EFAULT; 6303 if (idx >= (i_size_read(mapping->host) >> huge_page_shift(h))) 6304 goto out_release_nounlock; 6305 6306 /* 6307 * Serialization between remove_inode_hugepages() and 6308 * hugetlb_add_to_page_cache() below happens through the 6309 * hugetlb_fault_mutex_table that here must be hold by 6310 * the caller. 6311 */ 6312 ret = hugetlb_add_to_page_cache(folio, mapping, idx); 6313 if (ret) 6314 goto out_release_nounlock; 6315 folio_in_pagecache = true; 6316 } 6317 6318 ptl = huge_pte_lock(h, dst_mm, dst_pte); 6319 6320 ret = -EIO; 6321 if (folio_test_hwpoison(folio)) 6322 goto out_release_unlock; 6323 6324 ret = -EEXIST; 6325 6326 dst_ptep = huge_ptep_get(dst_mm, dst_addr, dst_pte); 6327 /* 6328 * See comment about UFFD marker overwriting in 6329 * mfill_atomic_install_pte(). 6330 */ 6331 if (!huge_pte_none(dst_ptep) && !pte_is_uffd_marker(dst_ptep)) 6332 goto out_release_unlock; 6333 6334 if (folio_in_pagecache) 6335 hugetlb_add_file_rmap(folio); 6336 else 6337 hugetlb_add_new_anon_rmap(folio, dst_vma, dst_addr); 6338 6339 /* 6340 * For either: (1) CONTINUE on a non-shared VMA, or (2) UFFDIO_COPY 6341 * with wp flag set, don't set pte write bit. 6342 */ 6343 _dst_pte = make_huge_pte(dst_vma, folio, 6344 !wp_enabled && !(is_continue && !vm_shared)); 6345 /* 6346 * Always mark UFFDIO_COPY page dirty; note that this may not be 6347 * extremely important for hugetlbfs for now since swapping is not 6348 * supported, but we should still be clear in that this page cannot be 6349 * thrown away at will, even if write bit not set. 6350 */ 6351 _dst_pte = huge_pte_mkdirty(_dst_pte); 6352 _dst_pte = pte_mkyoung(_dst_pte); 6353 6354 if (wp_enabled) 6355 _dst_pte = huge_pte_mkuffd_wp(_dst_pte); 6356 6357 set_huge_pte_at(dst_mm, dst_addr, dst_pte, _dst_pte, size); 6358 6359 hugetlb_count_add(pages_per_huge_page(h), dst_mm); 6360 6361 /* No need to invalidate - it was non-present before */ 6362 update_mmu_cache(dst_vma, dst_addr, dst_pte); 6363 6364 spin_unlock(ptl); 6365 if (!is_continue) 6366 folio_set_hugetlb_migratable(folio); 6367 if (vm_shared || is_continue) 6368 folio_unlock(folio); 6369 ret = 0; 6370 out: 6371 return ret; 6372 out_release_unlock: 6373 spin_unlock(ptl); 6374 if (vm_shared || is_continue) 6375 folio_unlock(folio); 6376 out_release_nounlock: 6377 if (!folio_in_pagecache) 6378 restore_reserve_on_error(h, dst_vma, dst_addr, folio); 6379 folio_put(folio); 6380 goto out; 6381 } 6382 #endif /* CONFIG_USERFAULTFD */ 6383 6384 long hugetlb_change_protection(struct vm_area_struct *vma, 6385 unsigned long address, unsigned long end, 6386 pgprot_t newprot, unsigned long cp_flags) 6387 { 6388 struct mm_struct *mm = vma->vm_mm; 6389 unsigned long start = address; 6390 pte_t *ptep; 6391 pte_t pte; 6392 struct hstate *h = hstate_vma(vma); 6393 long pages = 0, psize = huge_page_size(h); 6394 struct mmu_notifier_range range; 6395 unsigned long last_addr_mask; 6396 bool uffd_wp = cp_flags & MM_CP_UFFD_WP; 6397 bool uffd_wp_resolve = cp_flags & MM_CP_UFFD_WP_RESOLVE; 6398 struct mmu_gather tlb; 6399 6400 /* 6401 * In the case of shared PMDs, the area to flush could be beyond 6402 * start/end. Set range.start/range.end to cover the maximum possible 6403 * range if PMD sharing is possible. 6404 */ 6405 mmu_notifier_range_init(&range, MMU_NOTIFY_PROTECTION_VMA, 6406 0, mm, start, end); 6407 adjust_range_if_pmd_sharing_possible(vma, &range.start, &range.end); 6408 6409 BUG_ON(address >= end); 6410 flush_cache_range(vma, range.start, range.end); 6411 tlb_gather_mmu_vma(&tlb, vma); 6412 6413 mmu_notifier_invalidate_range_start(&range); 6414 hugetlb_vma_lock_write(vma); 6415 i_mmap_lock_write(vma->vm_file->f_mapping); 6416 last_addr_mask = hugetlb_mask_last_page(h); 6417 for (; address < end; address += psize) { 6418 softleaf_t entry; 6419 spinlock_t *ptl; 6420 6421 ptep = hugetlb_walk(vma, address, psize); 6422 if (!ptep) { 6423 if (!uffd_wp) { 6424 address |= last_addr_mask; 6425 continue; 6426 } 6427 /* 6428 * Userfaultfd wr-protect requires pgtable 6429 * pre-allocations to install pte markers. 6430 */ 6431 ptep = huge_pte_alloc(mm, vma, address, psize); 6432 if (!ptep) { 6433 pages = -ENOMEM; 6434 break; 6435 } 6436 } 6437 ptl = huge_pte_lock(h, mm, ptep); 6438 if (huge_pmd_unshare(&tlb, vma, address, ptep)) { 6439 /* 6440 * When uffd-wp is enabled on the vma, unshare 6441 * shouldn't happen at all. Warn about it if it 6442 * happened due to some reason. 6443 */ 6444 WARN_ON_ONCE(uffd_wp || uffd_wp_resolve); 6445 pages++; 6446 spin_unlock(ptl); 6447 address |= last_addr_mask; 6448 continue; 6449 } 6450 pte = huge_ptep_get(mm, address, ptep); 6451 if (huge_pte_none(pte)) { 6452 if (unlikely(uffd_wp)) 6453 /* Safe to modify directly (none->non-present). */ 6454 set_huge_pte_at(mm, address, ptep, 6455 make_pte_marker(PTE_MARKER_UFFD_WP), 6456 psize); 6457 goto next; 6458 } 6459 6460 entry = softleaf_from_pte(pte); 6461 if (unlikely(softleaf_is_hwpoison(entry))) { 6462 /* Nothing to do. */ 6463 } else if (unlikely(softleaf_is_migration(entry))) { 6464 struct folio *folio = softleaf_to_folio(entry); 6465 pte_t newpte = pte; 6466 6467 if (softleaf_is_migration_write(entry)) { 6468 if (folio_test_anon(folio)) 6469 entry = make_readable_exclusive_migration_entry( 6470 swp_offset(entry)); 6471 else 6472 entry = make_readable_migration_entry( 6473 swp_offset(entry)); 6474 newpte = swp_entry_to_pte(entry); 6475 pages++; 6476 } 6477 6478 if (uffd_wp) 6479 newpte = pte_swp_mkuffd_wp(newpte); 6480 else if (uffd_wp_resolve) 6481 newpte = pte_swp_clear_uffd_wp(newpte); 6482 if (!pte_same(pte, newpte)) 6483 set_huge_pte_at(mm, address, ptep, newpte, psize); 6484 } else if (unlikely(pte_is_marker(pte))) { 6485 /* 6486 * Do nothing on a poison marker; page is 6487 * corrupted, permissions do not apply. Here 6488 * pte_marker_uffd_wp()==true implies !poison 6489 * because they're mutual exclusive. 6490 */ 6491 if (pte_is_uffd_wp_marker(pte) && uffd_wp_resolve) 6492 /* Safe to modify directly (non-present->none). */ 6493 huge_pte_clear(mm, address, ptep, psize); 6494 } else { 6495 pte_t old_pte; 6496 unsigned int shift = huge_page_shift(hstate_vma(vma)); 6497 6498 old_pte = huge_ptep_modify_prot_start(vma, address, ptep); 6499 pte = huge_pte_modify(old_pte, newprot); 6500 pte = arch_make_huge_pte(pte, shift, vma->vm_flags); 6501 if (uffd_wp) 6502 pte = huge_pte_mkuffd_wp(pte); 6503 else if (uffd_wp_resolve) 6504 pte = huge_pte_clear_uffd_wp(pte); 6505 huge_ptep_modify_prot_commit(vma, address, ptep, old_pte, pte); 6506 pages++; 6507 tlb_remove_huge_tlb_entry(h, &tlb, ptep, address); 6508 } 6509 6510 next: 6511 spin_unlock(ptl); 6512 cond_resched(); 6513 } 6514 6515 tlb_flush_mmu_tlbonly(&tlb); 6516 huge_pmd_unshare_flush(&tlb, vma); 6517 /* 6518 * No need to call mmu_notifier_arch_invalidate_secondary_tlbs() we are 6519 * downgrading page table protection not changing it to point to a new 6520 * page. 6521 * 6522 * See Documentation/mm/mmu_notifier.rst 6523 */ 6524 i_mmap_unlock_write(vma->vm_file->f_mapping); 6525 hugetlb_vma_unlock_write(vma); 6526 mmu_notifier_invalidate_range_end(&range); 6527 tlb_finish_mmu(&tlb); 6528 6529 return pages > 0 ? (pages << h->order) : pages; 6530 } 6531 6532 /* 6533 * Update the reservation map for the range [from, to]. 6534 * 6535 * Returns the number of entries that would be added to the reservation map 6536 * associated with the range [from, to]. This number is greater or equal to 6537 * zero. -EINVAL or -ENOMEM is returned in case of any errors. 6538 */ 6539 6540 long hugetlb_reserve_pages(struct inode *inode, 6541 long from, long to, 6542 struct vm_area_struct *vma, 6543 vma_flags_t vma_flags) 6544 { 6545 long chg = -1, add = -1, spool_resv, gbl_resv; 6546 struct hstate *h = hstate_inode(inode); 6547 struct hugepage_subpool *spool = subpool_inode(inode); 6548 struct resv_map *resv_map; 6549 struct hugetlb_cgroup *h_cg = NULL; 6550 long gbl_reserve, regions_needed = 0; 6551 int err; 6552 6553 /* This should never happen */ 6554 if (from > to) { 6555 VM_WARN(1, "%s called with a negative range\n", __func__); 6556 return -EINVAL; 6557 } 6558 6559 /* 6560 * vma specific semaphore used for pmd sharing and fault/truncation 6561 * synchronization 6562 */ 6563 hugetlb_vma_lock_alloc(vma); 6564 6565 /* 6566 * Only apply hugepage reservation if asked. At fault time, an 6567 * attempt will be made for VM_NORESERVE to allocate a page 6568 * without using reserves 6569 */ 6570 if (vma_flags_test(&vma_flags, VMA_NORESERVE_BIT)) 6571 return 0; 6572 6573 /* 6574 * Shared mappings base their reservation on the number of pages that 6575 * are already allocated on behalf of the file. Private mappings need 6576 * to reserve the full area even if read-only as mprotect() may be 6577 * called to make the mapping read-write. Assume !vma is a shm mapping 6578 */ 6579 if (!vma || vma_test(vma, VMA_MAYSHARE_BIT)) { 6580 /* 6581 * resv_map can not be NULL as hugetlb_reserve_pages is only 6582 * called for inodes for which resv_maps were created (see 6583 * hugetlbfs_get_inode). 6584 */ 6585 resv_map = inode_resv_map(inode); 6586 6587 chg = region_chg(resv_map, from, to, ®ions_needed); 6588 } else { 6589 /* Private mapping. */ 6590 resv_map = resv_map_alloc(); 6591 if (!resv_map) { 6592 err = -ENOMEM; 6593 goto out_err; 6594 } 6595 6596 chg = to - from; 6597 6598 set_vma_resv_map(vma, resv_map); 6599 set_vma_resv_flags(vma, HPAGE_RESV_OWNER); 6600 } 6601 6602 if (chg < 0) { 6603 /* region_chg() above can return -ENOMEM */ 6604 err = (chg == -ENOMEM) ? -ENOMEM : -EINVAL; 6605 goto out_err; 6606 } 6607 6608 err = hugetlb_cgroup_charge_cgroup_rsvd(hstate_index(h), 6609 chg * pages_per_huge_page(h), &h_cg); 6610 if (err < 0) 6611 goto out_err; 6612 6613 if (vma && !vma_test(vma, VMA_MAYSHARE_BIT) && h_cg) { 6614 /* For private mappings, the hugetlb_cgroup uncharge info hangs 6615 * of the resv_map. 6616 */ 6617 resv_map_set_hugetlb_cgroup_uncharge_info(resv_map, h_cg, h); 6618 } 6619 6620 /* 6621 * There must be enough pages in the subpool for the mapping. If 6622 * the subpool has a minimum size, there may be some global 6623 * reservations already in place (gbl_reserve). 6624 */ 6625 gbl_reserve = hugepage_subpool_get_pages(spool, chg); 6626 if (gbl_reserve < 0) { 6627 err = gbl_reserve; 6628 goto out_uncharge_cgroup; 6629 } 6630 6631 /* 6632 * Check enough hugepages are available for the reservation. 6633 * Hand the pages back to the subpool if there are not 6634 */ 6635 err = hugetlb_acct_memory(h, gbl_reserve); 6636 if (err < 0) 6637 goto out_put_pages; 6638 6639 /* 6640 * Account for the reservations made. Shared mappings record regions 6641 * that have reservations as they are shared by multiple VMAs. 6642 * When the last VMA disappears, the region map says how much 6643 * the reservation was and the page cache tells how much of 6644 * the reservation was consumed. Private mappings are per-VMA and 6645 * only the consumed reservations are tracked. When the VMA 6646 * disappears, the original reservation is the VMA size and the 6647 * consumed reservations are stored in the map. Hence, nothing 6648 * else has to be done for private mappings here 6649 */ 6650 if (!vma || vma_test(vma, VMA_MAYSHARE_BIT)) { 6651 add = region_add(resv_map, from, to, regions_needed, h, h_cg); 6652 6653 if (unlikely(add < 0)) { 6654 hugetlb_acct_memory(h, -gbl_reserve); 6655 err = add; 6656 goto out_put_pages; 6657 } else if (unlikely(chg > add)) { 6658 /* 6659 * pages in this range were added to the reserve 6660 * map between region_chg and region_add. This 6661 * indicates a race with alloc_hugetlb_folio. Adjust 6662 * the subpool and reserve counts modified above 6663 * based on the difference. 6664 */ 6665 long rsv_adjust; 6666 6667 /* 6668 * hugetlb_cgroup_uncharge_cgroup_rsvd() will put the 6669 * reference to h_cg->css. See comment below for detail. 6670 */ 6671 hugetlb_cgroup_uncharge_cgroup_rsvd( 6672 hstate_index(h), 6673 (chg - add) * pages_per_huge_page(h), h_cg); 6674 6675 rsv_adjust = hugepage_subpool_put_pages(spool, 6676 chg - add); 6677 hugetlb_acct_memory(h, -rsv_adjust); 6678 } else if (h_cg) { 6679 /* 6680 * The file_regions will hold their own reference to 6681 * h_cg->css. So we should release the reference held 6682 * via hugetlb_cgroup_charge_cgroup_rsvd() when we are 6683 * done. 6684 */ 6685 hugetlb_cgroup_put_rsvd_cgroup(h_cg); 6686 } 6687 } 6688 return chg; 6689 6690 out_put_pages: 6691 spool_resv = chg - gbl_reserve; 6692 if (spool_resv) { 6693 /* put sub pool's reservation back, chg - gbl_reserve */ 6694 gbl_resv = hugepage_subpool_put_pages(spool, spool_resv); 6695 /* 6696 * subpool's reserved pages can not be put back due to race, 6697 * return to hstate. 6698 */ 6699 hugetlb_acct_memory(h, -gbl_resv); 6700 } 6701 /* Restore used_hpages for pages that failed global reservation */ 6702 if (gbl_reserve && spool) { 6703 unsigned long flags; 6704 6705 spin_lock_irqsave(&spool->lock, flags); 6706 if (spool->max_hpages != -1) 6707 spool->used_hpages -= gbl_reserve; 6708 unlock_or_release_subpool(spool, flags); 6709 } 6710 out_uncharge_cgroup: 6711 hugetlb_cgroup_uncharge_cgroup_rsvd(hstate_index(h), 6712 chg * pages_per_huge_page(h), h_cg); 6713 out_err: 6714 hugetlb_vma_lock_free(vma); 6715 if (!vma || vma_test(vma, VMA_MAYSHARE_BIT)) 6716 /* Only call region_abort if the region_chg succeeded but the 6717 * region_add failed or didn't run. 6718 */ 6719 if (chg >= 0 && add < 0) 6720 region_abort(resv_map, from, to, regions_needed); 6721 if (vma && is_vma_resv_set(vma, HPAGE_RESV_OWNER)) { 6722 kref_put(&resv_map->refs, resv_map_release); 6723 set_vma_resv_map(vma, NULL); 6724 } 6725 return err; 6726 } 6727 6728 long hugetlb_unreserve_pages(struct inode *inode, long start, long end, 6729 long freed) 6730 { 6731 struct hstate *h = hstate_inode(inode); 6732 struct resv_map *resv_map = inode_resv_map(inode); 6733 long chg = 0; 6734 struct hugepage_subpool *spool = subpool_inode(inode); 6735 long gbl_reserve; 6736 6737 /* 6738 * Since this routine can be called in the evict inode path for all 6739 * hugetlbfs inodes, resv_map could be NULL. 6740 */ 6741 if (resv_map) { 6742 chg = region_del(resv_map, start, end); 6743 /* 6744 * region_del() can fail in the rare case where a region 6745 * must be split and another region descriptor can not be 6746 * allocated. If end == LONG_MAX, it will not fail. 6747 */ 6748 if (chg < 0) 6749 return chg; 6750 } 6751 6752 spin_lock(&inode->i_lock); 6753 inode->i_blocks -= (blocks_per_huge_page(h) * freed); 6754 spin_unlock(&inode->i_lock); 6755 6756 /* 6757 * If the subpool has a minimum size, the number of global 6758 * reservations to be released may be adjusted. 6759 * 6760 * Note that !resv_map implies freed == 0. So (chg - freed) 6761 * won't go negative. 6762 */ 6763 gbl_reserve = hugepage_subpool_put_pages(spool, (chg - freed)); 6764 hugetlb_acct_memory(h, -gbl_reserve); 6765 6766 return 0; 6767 } 6768 6769 #ifdef CONFIG_HUGETLB_PMD_PAGE_TABLE_SHARING 6770 static unsigned long page_table_shareable(struct vm_area_struct *svma, 6771 struct vm_area_struct *vma, 6772 unsigned long addr, pgoff_t idx) 6773 { 6774 unsigned long saddr = ((idx - svma->vm_pgoff) << PAGE_SHIFT) + 6775 svma->vm_start; 6776 unsigned long sbase = saddr & PUD_MASK; 6777 unsigned long s_end = sbase + PUD_SIZE; 6778 6779 /* Allow segments to share if only one is marked locked */ 6780 vm_flags_t vm_flags = vma->vm_flags & ~VM_LOCKED_MASK; 6781 vm_flags_t svm_flags = svma->vm_flags & ~VM_LOCKED_MASK; 6782 6783 /* 6784 * match the virtual addresses, permission and the alignment of the 6785 * page table page. 6786 * 6787 * Also, vma_lock (vm_private_data) is required for sharing. 6788 */ 6789 if (pmd_index(addr) != pmd_index(saddr) || 6790 vm_flags != svm_flags || 6791 !range_in_vma(svma, sbase, s_end) || 6792 !svma->vm_private_data) 6793 return 0; 6794 6795 return saddr; 6796 } 6797 6798 bool want_pmd_share(struct vm_area_struct *vma, unsigned long addr) 6799 { 6800 unsigned long start = addr & PUD_MASK; 6801 unsigned long end = start + PUD_SIZE; 6802 6803 #ifdef CONFIG_USERFAULTFD 6804 if (uffd_disable_huge_pmd_share(vma)) 6805 return false; 6806 #endif 6807 /* 6808 * check on proper vm_flags and page table alignment 6809 */ 6810 if (!(vma->vm_flags & VM_MAYSHARE)) 6811 return false; 6812 if (!vma->vm_private_data) /* vma lock required for sharing */ 6813 return false; 6814 if (!range_in_vma(vma, start, end)) 6815 return false; 6816 return true; 6817 } 6818 6819 /* 6820 * Determine if start,end range within vma could be mapped by shared pmd. 6821 * If yes, adjust start and end to cover range associated with possible 6822 * shared pmd mappings. 6823 */ 6824 void adjust_range_if_pmd_sharing_possible(struct vm_area_struct *vma, 6825 unsigned long *start, unsigned long *end) 6826 { 6827 unsigned long v_start = ALIGN(vma->vm_start, PUD_SIZE), 6828 v_end = ALIGN_DOWN(vma->vm_end, PUD_SIZE); 6829 6830 /* 6831 * vma needs to span at least one aligned PUD size, and the range 6832 * must be at least partially within in. 6833 */ 6834 if (!(vma->vm_flags & VM_MAYSHARE) || !(v_end > v_start) || 6835 (*end <= v_start) || (*start >= v_end)) 6836 return; 6837 6838 /* Extend the range to be PUD aligned for a worst case scenario */ 6839 if (*start > v_start) 6840 *start = ALIGN_DOWN(*start, PUD_SIZE); 6841 6842 if (*end < v_end) 6843 *end = ALIGN(*end, PUD_SIZE); 6844 } 6845 6846 /* 6847 * Search for a shareable pmd page for hugetlb. In any case calls pmd_alloc() 6848 * and returns the corresponding pte. While this is not necessary for the 6849 * !shared pmd case because we can allocate the pmd later as well, it makes the 6850 * code much cleaner. pmd allocation is essential for the shared case because 6851 * pud has to be populated inside the same i_mmap_rwsem section - otherwise 6852 * racing tasks could either miss the sharing (see huge_pte_offset) or select a 6853 * bad pmd for sharing. 6854 */ 6855 pte_t *huge_pmd_share(struct mm_struct *mm, struct vm_area_struct *vma, 6856 unsigned long addr, pud_t *pud) 6857 { 6858 struct address_space *mapping = vma->vm_file->f_mapping; 6859 pgoff_t idx = ((addr - vma->vm_start) >> PAGE_SHIFT) + 6860 vma->vm_pgoff; 6861 struct vm_area_struct *svma; 6862 unsigned long saddr; 6863 pte_t *spte = NULL; 6864 pte_t *pte; 6865 6866 i_mmap_lock_read(mapping); 6867 vma_interval_tree_foreach(svma, &mapping->i_mmap, idx, idx) { 6868 if (svma == vma) 6869 continue; 6870 6871 saddr = page_table_shareable(svma, vma, addr, idx); 6872 if (saddr) { 6873 spte = hugetlb_walk(svma, saddr, 6874 vma_mmu_pagesize(svma)); 6875 if (spte) { 6876 ptdesc_pmd_pts_inc(virt_to_ptdesc(spte)); 6877 break; 6878 } 6879 } 6880 } 6881 6882 if (!spte) 6883 goto out; 6884 6885 spin_lock(&mm->page_table_lock); 6886 if (pud_none(*pud)) { 6887 pud_populate(mm, pud, 6888 (pmd_t *)((unsigned long)spte & PAGE_MASK)); 6889 mm_inc_nr_pmds(mm); 6890 } else { 6891 ptdesc_pmd_pts_dec(virt_to_ptdesc(spte)); 6892 } 6893 spin_unlock(&mm->page_table_lock); 6894 out: 6895 pte = (pte_t *)pmd_alloc(mm, pud, addr); 6896 i_mmap_unlock_read(mapping); 6897 return pte; 6898 } 6899 6900 static int __huge_pmd_unshare(struct mmu_gather *tlb, 6901 struct vm_area_struct *vma, unsigned long addr, pte_t *ptep, 6902 bool check_locks) 6903 { 6904 unsigned long sz = huge_page_size(hstate_vma(vma)); 6905 struct mm_struct *mm = vma->vm_mm; 6906 pgd_t *pgd = pgd_offset(mm, addr); 6907 p4d_t *p4d = p4d_offset(pgd, addr); 6908 pud_t *pud = pud_offset(p4d, addr); 6909 6910 if (sz != PMD_SIZE) 6911 return 0; 6912 if (!ptdesc_pmd_is_shared(virt_to_ptdesc(ptep))) 6913 return 0; 6914 i_mmap_assert_write_locked(vma->vm_file->f_mapping); 6915 if (check_locks) 6916 hugetlb_vma_assert_locked(vma); 6917 pud_clear(pud); 6918 6919 tlb_unshare_pmd_ptdesc(tlb, virt_to_ptdesc(ptep), addr); 6920 6921 mm_dec_nr_pmds(mm); 6922 return 1; 6923 } 6924 6925 /** 6926 * huge_pmd_unshare - Unmap a pmd table if it is shared by multiple users 6927 * @tlb: the current mmu_gather. 6928 * @vma: the vma covering the pmd table. 6929 * @addr: the address we are trying to unshare. 6930 * @ptep: pointer into the (pmd) page table. 6931 * 6932 * Called with the page table lock held, the i_mmap_rwsem held in write mode 6933 * and the hugetlb vma lock held in write mode. 6934 * 6935 * Note: The caller must call huge_pmd_unshare_flush() before dropping the 6936 * i_mmap_rwsem. 6937 * 6938 * Returns: 1 if it was a shared PMD table and it got unmapped, or 0 if it 6939 * was not a shared PMD table. 6940 */ 6941 int huge_pmd_unshare(struct mmu_gather *tlb, struct vm_area_struct *vma, 6942 unsigned long addr, pte_t *ptep) 6943 { 6944 return __huge_pmd_unshare(tlb, vma, addr, ptep, /*check_locks=*/true); 6945 } 6946 6947 /* 6948 * huge_pmd_unshare_flush - Complete a sequence of huge_pmd_unshare() calls 6949 * @tlb: the current mmu_gather. 6950 * @vma: the vma covering the pmd table. 6951 * 6952 * Perform necessary TLB flushes or IPI broadcasts to synchronize PMD table 6953 * unsharing with concurrent page table walkers. 6954 * 6955 * This function must be called after a sequence of huge_pmd_unshare() 6956 * calls while still holding the i_mmap_rwsem. 6957 */ 6958 void huge_pmd_unshare_flush(struct mmu_gather *tlb, struct vm_area_struct *vma) 6959 { 6960 /* 6961 * We must synchronize page table unsharing such that nobody will 6962 * try reusing a previously-shared page table while it might still 6963 * be in use by previous sharers (TLB, GUP_fast). 6964 */ 6965 i_mmap_assert_write_locked(vma->vm_file->f_mapping); 6966 6967 tlb_flush_unshared_tables(tlb); 6968 } 6969 6970 #else /* !CONFIG_HUGETLB_PMD_PAGE_TABLE_SHARING */ 6971 6972 pte_t *huge_pmd_share(struct mm_struct *mm, struct vm_area_struct *vma, 6973 unsigned long addr, pud_t *pud) 6974 { 6975 return NULL; 6976 } 6977 6978 static int __huge_pmd_unshare(struct mmu_gather *tlb, 6979 struct vm_area_struct *vma, unsigned long addr, pte_t *ptep, 6980 bool check_locks) 6981 { 6982 return 0; 6983 } 6984 6985 int huge_pmd_unshare(struct mmu_gather *tlb, struct vm_area_struct *vma, 6986 unsigned long addr, pte_t *ptep) 6987 { 6988 return 0; 6989 } 6990 6991 void huge_pmd_unshare_flush(struct mmu_gather *tlb, struct vm_area_struct *vma) 6992 { 6993 } 6994 6995 void adjust_range_if_pmd_sharing_possible(struct vm_area_struct *vma, 6996 unsigned long *start, unsigned long *end) 6997 { 6998 } 6999 7000 bool want_pmd_share(struct vm_area_struct *vma, unsigned long addr) 7001 { 7002 return false; 7003 } 7004 #endif /* CONFIG_HUGETLB_PMD_PAGE_TABLE_SHARING */ 7005 7006 #ifdef CONFIG_ARCH_WANT_GENERAL_HUGETLB 7007 pte_t *huge_pte_alloc(struct mm_struct *mm, struct vm_area_struct *vma, 7008 unsigned long addr, unsigned long sz) 7009 { 7010 pgd_t *pgd; 7011 p4d_t *p4d; 7012 pud_t *pud; 7013 pte_t *pte = NULL; 7014 7015 pgd = pgd_offset(mm, addr); 7016 p4d = p4d_alloc(mm, pgd, addr); 7017 if (!p4d) 7018 return NULL; 7019 pud = pud_alloc(mm, p4d, addr); 7020 if (pud) { 7021 if (sz == PUD_SIZE) { 7022 pte = (pte_t *)pud; 7023 } else { 7024 BUG_ON(sz != PMD_SIZE); 7025 if (want_pmd_share(vma, addr) && pud_none(*pud)) 7026 pte = huge_pmd_share(mm, vma, addr, pud); 7027 else 7028 pte = (pte_t *)pmd_alloc(mm, pud, addr); 7029 } 7030 } 7031 7032 if (pte) { 7033 pte_t pteval = ptep_get_lockless(pte); 7034 7035 BUG_ON(pte_present(pteval) && !pte_huge(pteval)); 7036 } 7037 7038 return pte; 7039 } 7040 7041 /* 7042 * huge_pte_offset() - Walk the page table to resolve the hugepage 7043 * entry at address @addr 7044 * 7045 * Return: Pointer to page table entry (PUD or PMD) for 7046 * address @addr, or NULL if a !p*d_present() entry is encountered and the 7047 * size @sz doesn't match the hugepage size at this level of the page 7048 * table. 7049 */ 7050 pte_t *huge_pte_offset(struct mm_struct *mm, 7051 unsigned long addr, unsigned long sz) 7052 { 7053 pgd_t *pgd; 7054 p4d_t *p4d; 7055 pud_t *pud; 7056 pmd_t *pmd; 7057 7058 pgd = pgd_offset(mm, addr); 7059 if (!pgd_present(*pgd)) 7060 return NULL; 7061 p4d = p4d_offset(pgd, addr); 7062 if (!p4d_present(*p4d)) 7063 return NULL; 7064 7065 pud = pud_offset(p4d, addr); 7066 if (sz == PUD_SIZE) 7067 /* must be pud huge, non-present or none */ 7068 return (pte_t *)pud; 7069 if (!pud_present(*pud)) 7070 return NULL; 7071 /* must have a valid entry and size to go further */ 7072 7073 pmd = pmd_offset(pud, addr); 7074 /* must be pmd huge, non-present or none */ 7075 return (pte_t *)pmd; 7076 } 7077 7078 /* 7079 * Return a mask that can be used to update an address to the last huge 7080 * page in a page table page mapping size. Used to skip non-present 7081 * page table entries when linearly scanning address ranges. Architectures 7082 * with unique huge page to page table relationships can define their own 7083 * version of this routine. 7084 */ 7085 unsigned long hugetlb_mask_last_page(struct hstate *h) 7086 { 7087 unsigned long hp_size = huge_page_size(h); 7088 7089 if (hp_size == PUD_SIZE) 7090 return P4D_SIZE - PUD_SIZE; 7091 else if (hp_size == PMD_SIZE) 7092 return PUD_SIZE - PMD_SIZE; 7093 else 7094 return 0UL; 7095 } 7096 7097 #else 7098 7099 /* See description above. Architectures can provide their own version. */ 7100 __weak unsigned long hugetlb_mask_last_page(struct hstate *h) 7101 { 7102 #ifdef CONFIG_HUGETLB_PMD_PAGE_TABLE_SHARING 7103 if (huge_page_size(h) == PMD_SIZE) 7104 return PUD_SIZE - PMD_SIZE; 7105 #endif 7106 return 0UL; 7107 } 7108 7109 #endif /* CONFIG_ARCH_WANT_GENERAL_HUGETLB */ 7110 7111 /** 7112 * folio_isolate_hugetlb - try to isolate an allocated hugetlb folio 7113 * @folio: the folio to isolate 7114 * @list: the list to add the folio to on success 7115 * 7116 * Isolate an allocated (refcount > 0) hugetlb folio, marking it as 7117 * isolated/non-migratable, and moving it from the active list to the 7118 * given list. 7119 * 7120 * Isolation will fail if @folio is not an allocated hugetlb folio, or if 7121 * it is already isolated/non-migratable. 7122 * 7123 * On success, an additional folio reference is taken that must be dropped 7124 * using folio_putback_hugetlb() to undo the isolation. 7125 * 7126 * Return: True if isolation worked, otherwise False. 7127 */ 7128 bool folio_isolate_hugetlb(struct folio *folio, struct list_head *list) 7129 { 7130 bool ret = true; 7131 7132 spin_lock_irq(&hugetlb_lock); 7133 if (!folio_test_hugetlb(folio) || 7134 !folio_test_hugetlb_migratable(folio) || 7135 !folio_try_get(folio)) { 7136 ret = false; 7137 goto unlock; 7138 } 7139 folio_clear_hugetlb_migratable(folio); 7140 list_move_tail(&folio->lru, list); 7141 unlock: 7142 spin_unlock_irq(&hugetlb_lock); 7143 return ret; 7144 } 7145 7146 int get_hwpoison_hugetlb_folio(struct folio *folio, bool *hugetlb, bool unpoison) 7147 { 7148 int ret = 0; 7149 7150 *hugetlb = false; 7151 spin_lock_irq(&hugetlb_lock); 7152 if (folio_test_hugetlb(folio)) { 7153 *hugetlb = true; 7154 if (folio_test_hugetlb_freed(folio)) 7155 ret = 0; 7156 else if (folio_test_hugetlb_migratable(folio) || unpoison) 7157 ret = folio_try_get(folio); 7158 else 7159 ret = -EBUSY; 7160 } 7161 spin_unlock_irq(&hugetlb_lock); 7162 return ret; 7163 } 7164 7165 /** 7166 * folio_putback_hugetlb - unisolate a hugetlb folio 7167 * @folio: the isolated hugetlb folio 7168 * 7169 * Putback/un-isolate the hugetlb folio that was previous isolated using 7170 * folio_isolate_hugetlb(): marking it non-isolated/migratable and putting it 7171 * back onto the active list. 7172 * 7173 * Will drop the additional folio reference obtained through 7174 * folio_isolate_hugetlb(). 7175 */ 7176 void folio_putback_hugetlb(struct folio *folio) 7177 { 7178 spin_lock_irq(&hugetlb_lock); 7179 folio_set_hugetlb_migratable(folio); 7180 list_move_tail(&folio->lru, &(folio_hstate(folio))->hugepage_activelist); 7181 spin_unlock_irq(&hugetlb_lock); 7182 folio_put(folio); 7183 } 7184 7185 void move_hugetlb_state(struct folio *old_folio, struct folio *new_folio, int reason) 7186 { 7187 struct hstate *h = folio_hstate(old_folio); 7188 7189 hugetlb_cgroup_migrate(old_folio, new_folio); 7190 folio_set_owner_migrate_reason(new_folio, reason); 7191 7192 /* 7193 * transfer temporary state of the new hugetlb folio. This is 7194 * reverse to other transitions because the newpage is going to 7195 * be final while the old one will be freed so it takes over 7196 * the temporary status. 7197 * 7198 * Also note that we have to transfer the per-node surplus state 7199 * here as well otherwise the global surplus count will not match 7200 * the per-node's. 7201 */ 7202 if (folio_test_hugetlb_temporary(new_folio)) { 7203 int old_nid = folio_nid(old_folio); 7204 int new_nid = folio_nid(new_folio); 7205 7206 folio_set_hugetlb_temporary(old_folio); 7207 folio_clear_hugetlb_temporary(new_folio); 7208 7209 7210 /* 7211 * There is no need to transfer the per-node surplus state 7212 * when we do not cross the node. 7213 */ 7214 if (new_nid == old_nid) 7215 return; 7216 spin_lock_irq(&hugetlb_lock); 7217 if (h->surplus_huge_pages_node[old_nid]) { 7218 h->surplus_huge_pages_node[old_nid]--; 7219 h->surplus_huge_pages_node[new_nid]++; 7220 } 7221 spin_unlock_irq(&hugetlb_lock); 7222 } 7223 7224 /* 7225 * Our old folio is isolated and has "migratable" cleared until it 7226 * is putback. As migration succeeded, set the new folio "migratable" 7227 * and add it to the active list. 7228 */ 7229 spin_lock_irq(&hugetlb_lock); 7230 folio_set_hugetlb_migratable(new_folio); 7231 list_move_tail(&new_folio->lru, &(folio_hstate(new_folio))->hugepage_activelist); 7232 spin_unlock_irq(&hugetlb_lock); 7233 } 7234 7235 /* 7236 * If @take_locks is false, the caller must ensure that no concurrent page table 7237 * access can happen (except for gup_fast() and hardware page walks). 7238 * If @take_locks is true, we take the hugetlb VMA lock (to lock out things like 7239 * concurrent page fault handling) and the file rmap lock. 7240 */ 7241 static void hugetlb_unshare_pmds(struct vm_area_struct *vma, 7242 unsigned long start, 7243 unsigned long end, 7244 bool take_locks) 7245 { 7246 struct hstate *h = hstate_vma(vma); 7247 unsigned long sz = huge_page_size(h); 7248 struct mm_struct *mm = vma->vm_mm; 7249 struct mmu_notifier_range range; 7250 struct mmu_gather tlb; 7251 unsigned long address; 7252 spinlock_t *ptl; 7253 pte_t *ptep; 7254 7255 if (!(vma->vm_flags & VM_MAYSHARE)) 7256 return; 7257 7258 if (start >= end) 7259 return; 7260 7261 flush_cache_range(vma, start, end); 7262 tlb_gather_mmu_vma(&tlb, vma); 7263 7264 /* 7265 * No need to call adjust_range_if_pmd_sharing_possible(), because 7266 * we have already done the PUD_SIZE alignment. 7267 */ 7268 mmu_notifier_range_init(&range, MMU_NOTIFY_CLEAR, 0, mm, 7269 start, end); 7270 mmu_notifier_invalidate_range_start(&range); 7271 if (take_locks) { 7272 hugetlb_vma_lock_write(vma); 7273 i_mmap_lock_write(vma->vm_file->f_mapping); 7274 } else { 7275 i_mmap_assert_write_locked(vma->vm_file->f_mapping); 7276 } 7277 for (address = start; address < end; address += PUD_SIZE) { 7278 ptep = hugetlb_walk(vma, address, sz); 7279 if (!ptep) 7280 continue; 7281 ptl = huge_pte_lock(h, mm, ptep); 7282 __huge_pmd_unshare(&tlb, vma, address, ptep, take_locks); 7283 spin_unlock(ptl); 7284 } 7285 huge_pmd_unshare_flush(&tlb, vma); 7286 if (take_locks) { 7287 i_mmap_unlock_write(vma->vm_file->f_mapping); 7288 hugetlb_vma_unlock_write(vma); 7289 } 7290 /* 7291 * No need to call mmu_notifier_arch_invalidate_secondary_tlbs(), see 7292 * Documentation/mm/mmu_notifier.rst. 7293 */ 7294 mmu_notifier_invalidate_range_end(&range); 7295 tlb_finish_mmu(&tlb); 7296 } 7297 7298 /* 7299 * This function will unconditionally remove all the shared pmd pgtable entries 7300 * within the specific vma for a hugetlbfs memory range. 7301 */ 7302 void hugetlb_unshare_all_pmds(struct vm_area_struct *vma) 7303 { 7304 hugetlb_unshare_pmds(vma, ALIGN(vma->vm_start, PUD_SIZE), 7305 ALIGN_DOWN(vma->vm_end, PUD_SIZE), 7306 /* take_locks = */ true); 7307 } 7308 7309 /* 7310 * For hugetlb, mremap() is an odd edge case - while the VMA copying is 7311 * performed, we permit both the old and new VMAs to reference the same 7312 * reservation. 7313 * 7314 * We fix this up after the operation succeeds, or if a newly allocated VMA 7315 * is closed as a result of a failure to allocate memory. 7316 */ 7317 void fixup_hugetlb_reservations(struct vm_area_struct *vma) 7318 { 7319 if (is_vm_hugetlb_page(vma)) 7320 clear_vma_resv_huge_pages(vma); 7321 } 7322