1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * SLUB: A slab allocator with low overhead percpu array caches and mostly 4 * lockless freeing of objects to slabs in the slowpath. 5 * 6 * The allocator synchronizes using spin_trylock for percpu arrays in the 7 * fastpath, and cmpxchg_double (or bit spinlock) for slowpath freeing. 8 * Uses a centralized lock to manage a pool of partial slabs. 9 * 10 * (C) 2007 SGI, Christoph Lameter 11 * (C) 2011 Linux Foundation, Christoph Lameter 12 * (C) 2025 SUSE, Vlastimil Babka 13 */ 14 15 #include <linux/mm.h> 16 #include <linux/swap.h> /* mm_account_reclaimed_pages() */ 17 #include <linux/module.h> 18 #include <linux/bit_spinlock.h> 19 #include <linux/interrupt.h> 20 #include <linux/swab.h> 21 #include <linux/bitops.h> 22 #include <linux/slab.h> 23 #include "slab.h" 24 #include <linux/vmalloc.h> 25 #include <linux/proc_fs.h> 26 #include <linux/seq_file.h> 27 #include <linux/kasan.h> 28 #include <linux/node.h> 29 #include <linux/kmsan.h> 30 #include <linux/cpu.h> 31 #include <linux/cpuset.h> 32 #include <linux/mempolicy.h> 33 #include <linux/ctype.h> 34 #include <linux/stackdepot.h> 35 #include <linux/debugobjects.h> 36 #include <linux/kallsyms.h> 37 #include <linux/kfence.h> 38 #include <linux/memory.h> 39 #include <linux/math64.h> 40 #include <linux/fault-inject.h> 41 #include <linux/kmemleak.h> 42 #include <linux/stacktrace.h> 43 #include <linux/prefetch.h> 44 #include <linux/memcontrol.h> 45 #include <linux/random.h> 46 #include <linux/prandom.h> 47 #include <kunit/test.h> 48 #include <kunit/test-bug.h> 49 #include <linux/sort.h> 50 #include <linux/irq_work.h> 51 #include <linux/kprobes.h> 52 #include <linux/debugfs.h> 53 #include <trace/events/kmem.h> 54 55 #include "internal.h" 56 57 /* 58 * Lock order: 59 * 0. cpu_hotplug_lock 60 * 1. slab_mutex (Global Mutex) 61 * 2a. kmem_cache->cpu_sheaves->lock (Local trylock) 62 * 2b. barn->lock (Spinlock) 63 * 2c. node->list_lock (Spinlock) 64 * 3. slab_lock(slab) (Only on some arches) 65 * 4. object_map_lock (Only for debugging) 66 * 67 * slab_mutex 68 * 69 * The role of the slab_mutex is to protect the list of all the slabs 70 * and to synchronize major metadata changes to slab cache structures. 71 * Also synchronizes memory hotplug callbacks. 72 * 73 * slab_lock 74 * 75 * The slab_lock is a wrapper around the page lock, thus it is a bit 76 * spinlock. 77 * 78 * The slab_lock is only used on arches that do not have the ability 79 * to do a cmpxchg_double. It only protects: 80 * 81 * A. slab->freelist -> List of free objects in a slab 82 * B. slab->inuse -> Number of objects in use 83 * C. slab->objects -> Number of objects in slab 84 * D. slab->frozen -> frozen state 85 * 86 * SL_partial slabs 87 * 88 * Slabs on node partial list have at least one free object. A limited number 89 * of slabs on the list can be fully free (slab->inuse == 0), until we start 90 * discarding them. These slabs are marked with SL_partial, and the flag is 91 * cleared while removing them, usually to grab their freelist afterwards. 92 * This clearing also exempts them from list management. Please see 93 * __slab_free() for more details. 94 * 95 * Full slabs 96 * 97 * For caches without debugging enabled, full slabs (slab->inuse == 98 * slab->objects and slab->freelist == NULL) are not placed on any list. 99 * The __slab_free() freeing the first object from such a slab will place 100 * it on the partial list. Caches with debugging enabled place such slab 101 * on the full list and use different allocation and freeing paths. 102 * 103 * Frozen slabs 104 * 105 * If a slab is frozen then it is exempt from list management. It is used to 106 * indicate a slab that has failed consistency checks and thus cannot be 107 * allocated from anymore - it is also marked as full. Any previously 108 * allocated objects will be simply leaked upon freeing instead of attempting 109 * to modify the potentially corrupted freelist and metadata. 110 * 111 * To sum up, the current scheme is: 112 * - node partial slab: SL_partial && !full && !frozen 113 * - taken off partial list: !SL_partial && !full && !frozen 114 * - full slab, not on any list: !SL_partial && full && !frozen 115 * - frozen due to inconsistency: !SL_partial && full && frozen 116 * 117 * node->list_lock (spinlock) 118 * 119 * The list_lock protects the partial and full list on each node and 120 * the partial slab counter. If taken then no new slabs may be added or 121 * removed from the lists nor make the number of partial slabs be modified. 122 * (Note that the total number of slabs is an atomic value that may be 123 * modified without taking the list lock). 124 * 125 * The list_lock is a centralized lock and thus we avoid taking it as 126 * much as possible. As long as SLUB does not have to handle partial 127 * slabs, operations can continue without any centralized lock. 128 * 129 * For debug caches, all allocations are forced to go through a list_lock 130 * protected region to serialize against concurrent validation. 131 * 132 * cpu_sheaves->lock (local_trylock) 133 * 134 * This lock protects fastpath operations on the percpu sheaves. On !RT it 135 * only disables preemption and does no atomic operations. As long as the main 136 * or spare sheaf can handle the allocation or free, there is no other 137 * overhead. 138 * 139 * barn->lock (spinlock) 140 * 141 * This lock protects the operations on per-NUMA-node barn. It can quickly 142 * serve an empty or full sheaf if available, and avoid more expensive refill 143 * or flush operation. 144 * 145 * Lockless freeing 146 * 147 * Objects may have to be freed to their slabs when they are from a remote 148 * node (where we want to avoid filling local sheaves with remote objects) 149 * or when there are too many full sheaves. On architectures supporting 150 * cmpxchg_double this is done by a lockless update of slab's freelist and 151 * counters, otherwise slab_lock is taken. This only needs to take the 152 * list_lock if it's a first free to a full slab, or when a slab becomes empty 153 * after the free. 154 * 155 * irq, preemption, migration considerations 156 * 157 * Interrupts are disabled as part of list_lock or barn lock operations, or 158 * around the slab_lock operation, in order to make the slab allocator safe 159 * to use in the context of an irq. 160 * Preemption is disabled as part of local_trylock operations. 161 * kmalloc_nolock() and kfree_nolock() are safe in NMI context but see 162 * their limitations. 163 * 164 * SLUB assigns two object arrays called sheaves for caching allocations and 165 * frees on each cpu, with a NUMA node shared barn for balancing between cpus. 166 * Allocations and frees are primarily served from these sheaves. 167 * 168 * Slabs with free elements are kept on a partial list and during regular 169 * operations no list for full slabs is used. If an object in a full slab is 170 * freed then the slab will show up again on the partial lists. 171 * We track full slabs for debugging purposes though because otherwise we 172 * cannot scan all objects. 173 * 174 * Slabs are freed when they become empty. Teardown and setup is minimal so we 175 * rely on the page allocators per cpu caches for fast frees and allocs. 176 * 177 * SLAB_DEBUG_FLAGS Slab requires special handling due to debug 178 * options set. This moves slab handling out of 179 * the fast path and disables lockless freelists. 180 */ 181 182 /** 183 * enum slab_flags - How the slab flags bits are used. 184 * @SL_locked: Is locked with slab_lock() 185 * @SL_partial: On the per-node partial list 186 * @SL_pfmemalloc: Was allocated from PF_MEMALLOC reserves 187 * 188 * The slab flags share space with the page flags but some bits have 189 * different interpretations. The high bits are used for information 190 * like zone/node/section. 191 */ 192 enum slab_flags { 193 SL_locked = PG_locked, 194 SL_partial = PG_workingset, /* Historical reasons for this bit */ 195 SL_pfmemalloc = PG_active, /* Historical reasons for this bit */ 196 }; 197 198 #ifndef CONFIG_SLUB_TINY 199 #define __fastpath_inline __always_inline 200 #else 201 #define __fastpath_inline 202 #endif 203 204 #ifdef CONFIG_SLUB_DEBUG 205 #ifdef CONFIG_SLUB_DEBUG_ON 206 DEFINE_STATIC_KEY_TRUE(slub_debug_enabled); 207 #else 208 DEFINE_STATIC_KEY_FALSE(slub_debug_enabled); 209 #endif 210 #endif /* CONFIG_SLUB_DEBUG */ 211 212 #ifdef CONFIG_NUMA 213 static DEFINE_STATIC_KEY_FALSE(strict_numa); 214 #endif 215 216 /* Structure holding parameters for get_from_partial() call chain */ 217 struct partial_context { 218 gfp_t flags; 219 unsigned int orig_size; 220 }; 221 222 /* Structure holding parameters for get_partial_node_bulk() */ 223 struct partial_bulk_context { 224 gfp_t flags; 225 unsigned int min_objects; 226 unsigned int max_objects; 227 struct list_head slabs; 228 }; 229 230 static inline bool kmem_cache_debug(struct kmem_cache *s) 231 { 232 return kmem_cache_debug_flags(s, SLAB_DEBUG_FLAGS); 233 } 234 235 void *fixup_red_left(struct kmem_cache *s, void *p) 236 { 237 if (kmem_cache_debug_flags(s, SLAB_RED_ZONE)) 238 p += s->red_left_pad; 239 240 return p; 241 } 242 243 /* 244 * Issues still to be resolved: 245 * 246 * - Support PAGE_ALLOC_DEBUG. Should be easy to do. 247 * 248 * - Variable sizing of the per node arrays 249 */ 250 251 /* Enable to log cmpxchg failures */ 252 #undef SLUB_DEBUG_CMPXCHG 253 254 #ifndef CONFIG_SLUB_TINY 255 /* 256 * Minimum number of partial slabs. These will be left on the partial 257 * lists even if they are empty. kmem_cache_shrink may reclaim them. 258 */ 259 #define MIN_PARTIAL 5 260 261 /* 262 * Maximum number of desirable partial slabs. 263 * The existence of more partial slabs makes kmem_cache_shrink 264 * sort the partial list by the number of objects in use. 265 */ 266 #define MAX_PARTIAL 10 267 #else 268 #define MIN_PARTIAL 0 269 #define MAX_PARTIAL 0 270 #endif 271 272 #define DEBUG_DEFAULT_FLAGS (SLAB_CONSISTENCY_CHECKS | SLAB_RED_ZONE | \ 273 SLAB_POISON | SLAB_STORE_USER) 274 275 /* 276 * These debug flags cannot use CMPXCHG because there might be consistency 277 * issues when checking or reading debug information 278 */ 279 #define SLAB_NO_CMPXCHG (SLAB_CONSISTENCY_CHECKS | SLAB_STORE_USER | \ 280 SLAB_TRACE) 281 282 283 /* 284 * Debugging flags that require metadata to be stored in the slab. These get 285 * disabled when slab_debug=O is used and a cache's min order increases with 286 * metadata. 287 */ 288 #define DEBUG_METADATA_FLAGS (SLAB_RED_ZONE | SLAB_POISON | SLAB_STORE_USER) 289 290 #define OO_SHIFT 16 291 #define OO_MASK ((1 << OO_SHIFT) - 1) 292 #define MAX_OBJS_PER_PAGE 32767 /* since slab.objects is u15 */ 293 294 /* Internal SLUB flags */ 295 /* Poison object */ 296 #define __OBJECT_POISON __SLAB_FLAG_BIT(_SLAB_OBJECT_POISON) 297 /* Use cmpxchg_double */ 298 299 #ifdef system_has_freelist_aba 300 #define __CMPXCHG_DOUBLE __SLAB_FLAG_BIT(_SLAB_CMPXCHG_DOUBLE) 301 #else 302 #define __CMPXCHG_DOUBLE __SLAB_FLAG_UNUSED 303 #endif 304 305 /* 306 * Tracking user of a slab. 307 */ 308 #define TRACK_ADDRS_COUNT 16 309 struct track { 310 unsigned long addr; /* Called from address */ 311 #ifdef CONFIG_STACKDEPOT 312 depot_stack_handle_t handle; 313 #endif 314 int cpu; /* Was running on cpu */ 315 int pid; /* Pid context */ 316 unsigned long when; /* When did the operation occur */ 317 }; 318 319 enum track_item { TRACK_ALLOC, TRACK_FREE }; 320 321 #ifdef SLAB_SUPPORTS_SYSFS 322 static int sysfs_slab_add(struct kmem_cache *); 323 #else 324 static inline int sysfs_slab_add(struct kmem_cache *s) { return 0; } 325 #endif 326 327 #if defined(CONFIG_DEBUG_FS) && defined(CONFIG_SLUB_DEBUG) 328 static void debugfs_slab_add(struct kmem_cache *); 329 #else 330 static inline void debugfs_slab_add(struct kmem_cache *s) { } 331 #endif 332 333 enum add_mode { 334 ADD_TO_HEAD, 335 ADD_TO_TAIL, 336 }; 337 338 enum stat_item { 339 ALLOC_FASTPATH, /* Allocation from percpu sheaves */ 340 ALLOC_SLOWPATH, /* Allocation from partial or new slab */ 341 FREE_RCU_SHEAF, /* Free to rcu_free sheaf */ 342 FREE_RCU_SHEAF_FAIL, /* Failed to free to a rcu_free sheaf */ 343 FREE_FASTPATH, /* Free to percpu sheaves */ 344 FREE_SLOWPATH, /* Free to a slab */ 345 FREE_ADD_PARTIAL, /* Freeing moves slab to partial list */ 346 FREE_REMOVE_PARTIAL, /* Freeing removes last object */ 347 ALLOC_SLAB, /* New slab acquired from page allocator */ 348 ALLOC_NODE_MISMATCH, /* Requested node different from cpu sheaf */ 349 FREE_SLAB, /* Slab freed to the page allocator */ 350 ORDER_FALLBACK, /* Number of times fallback was necessary */ 351 CMPXCHG_DOUBLE_FAIL, /* Failures of slab freelist update */ 352 SHEAF_FLUSH, /* Objects flushed from a sheaf */ 353 SHEAF_REFILL, /* Objects refilled to a sheaf */ 354 SHEAF_ALLOC, /* Allocation of an empty sheaf */ 355 SHEAF_FREE, /* Freeing of an empty sheaf */ 356 BARN_GET, /* Got full sheaf from barn */ 357 BARN_GET_FAIL, /* Failed to get full sheaf from barn */ 358 BARN_PUT, /* Put full sheaf to barn */ 359 BARN_PUT_FAIL, /* Failed to put full sheaf to barn */ 360 SHEAF_PREFILL_FAST, /* Sheaf prefill grabbed the spare sheaf */ 361 SHEAF_PREFILL_SLOW, /* Sheaf prefill found no spare sheaf */ 362 SHEAF_PREFILL_OVERSIZE, /* Allocation of oversize sheaf for prefill */ 363 SHEAF_RETURN_FAST, /* Sheaf return reattached spare sheaf */ 364 SHEAF_RETURN_SLOW, /* Sheaf return could not reattach spare */ 365 NR_SLUB_STAT_ITEMS 366 }; 367 368 #ifdef CONFIG_SLUB_STATS 369 struct kmem_cache_stats { 370 unsigned int stat[NR_SLUB_STAT_ITEMS]; 371 }; 372 #endif 373 374 static inline void stat(const struct kmem_cache *s, enum stat_item si) 375 { 376 #ifdef CONFIG_SLUB_STATS 377 /* 378 * The rmw is racy on a preemptible kernel but this is acceptable, so 379 * avoid this_cpu_add()'s irq-disable overhead. 380 */ 381 raw_cpu_inc(s->cpu_stats->stat[si]); 382 #endif 383 } 384 385 static inline 386 void stat_add(const struct kmem_cache *s, enum stat_item si, int v) 387 { 388 #ifdef CONFIG_SLUB_STATS 389 raw_cpu_add(s->cpu_stats->stat[si], v); 390 #endif 391 } 392 393 #define MAX_FULL_SHEAVES 10 394 #define MAX_EMPTY_SHEAVES 10 395 396 struct node_barn { 397 spinlock_t lock; 398 struct list_head sheaves_full; 399 struct list_head sheaves_empty; 400 unsigned int nr_full; 401 unsigned int nr_empty; 402 }; 403 404 struct slab_sheaf { 405 union { 406 struct rcu_head rcu_head; 407 struct list_head barn_list; 408 /* only used for prefilled sheafs */ 409 struct { 410 unsigned int capacity; 411 bool pfmemalloc; 412 }; 413 }; 414 struct kmem_cache *cache; 415 unsigned int size; 416 int node; /* only used for rcu_sheaf */ 417 void *objects[]; 418 }; 419 420 struct slub_percpu_sheaves { 421 local_trylock_t lock; 422 struct slab_sheaf *main; /* never NULL when unlocked */ 423 struct slab_sheaf *spare; /* empty or full, may be NULL */ 424 struct slab_sheaf *rcu_free; /* for batching kfree_rcu() */ 425 }; 426 427 /* 428 * The slab lists for all objects. 429 */ 430 struct kmem_cache_node { 431 spinlock_t list_lock; 432 unsigned long nr_partial; 433 struct list_head partial; 434 #ifdef CONFIG_SLUB_DEBUG 435 atomic_long_t nr_slabs; 436 atomic_long_t total_objects; 437 struct list_head full; 438 #endif 439 }; 440 441 static inline struct kmem_cache_node *get_node(struct kmem_cache *s, int node) 442 { 443 return s->per_node[node].node; 444 } 445 446 static inline struct node_barn *get_barn_node(struct kmem_cache *s, int node) 447 { 448 return s->per_node[node].barn; 449 } 450 451 /* 452 * Get the barn of the current cpu's NUMA node. It may be a memoryless node. 453 */ 454 static inline struct node_barn *get_barn(struct kmem_cache *s) 455 { 456 return get_barn_node(s, numa_node_id()); 457 } 458 459 /* 460 * Iterator over all nodes. The body will be executed for each node that has 461 * a kmem_cache_node structure allocated (which is true for all online nodes) 462 */ 463 #define for_each_kmem_cache_node(__s, __node, __n) \ 464 for (__node = 0; __node < nr_node_ids; __node++) \ 465 if ((__n = get_node(__s, __node))) 466 467 /* 468 * Tracks for which NUMA nodes we have kmem_cache_nodes allocated. 469 * Corresponds to node_state[N_MEMORY], but can temporarily 470 * differ during memory hotplug/hotremove operations. 471 * Protected by slab_mutex. 472 */ 473 static nodemask_t slab_nodes; 474 475 /* 476 * Similar to slab_nodes but for where we have node_barn allocated. 477 * Corresponds to N_ONLINE nodes. 478 */ 479 static nodemask_t slab_barn_nodes; 480 481 /* 482 * Workqueue used for flushing cpu and kfree_rcu sheaves. 483 */ 484 static struct workqueue_struct *flushwq; 485 486 struct slub_flush_work { 487 struct work_struct work; 488 struct kmem_cache *s; 489 bool skip; 490 }; 491 492 static DEFINE_MUTEX(flush_lock); 493 static DEFINE_PER_CPU(struct slub_flush_work, slub_flush); 494 495 /******************************************************************** 496 * Core slab cache functions 497 *******************************************************************/ 498 499 /* 500 * Returns freelist pointer (ptr). With hardening, this is obfuscated 501 * with an XOR of the address where the pointer is held and a per-cache 502 * random number. 503 */ 504 static inline freeptr_t freelist_ptr_encode(const struct kmem_cache *s, 505 void *ptr, unsigned long ptr_addr) 506 { 507 unsigned long encoded; 508 509 #ifdef CONFIG_SLAB_FREELIST_HARDENED 510 encoded = (unsigned long)ptr ^ s->random ^ swab(ptr_addr); 511 #else 512 encoded = (unsigned long)ptr; 513 #endif 514 return (freeptr_t){.v = encoded}; 515 } 516 517 static inline void *freelist_ptr_decode(const struct kmem_cache *s, 518 freeptr_t ptr, unsigned long ptr_addr) 519 { 520 void *decoded; 521 522 #ifdef CONFIG_SLAB_FREELIST_HARDENED 523 decoded = (void *)(ptr.v ^ s->random ^ swab(ptr_addr)); 524 #else 525 decoded = (void *)ptr.v; 526 #endif 527 return decoded; 528 } 529 530 static inline void *get_freepointer(struct kmem_cache *s, void *object) 531 { 532 unsigned long ptr_addr; 533 freeptr_t p; 534 535 object = kasan_reset_tag(object); 536 ptr_addr = (unsigned long)object + s->offset; 537 p = *(freeptr_t *)(ptr_addr); 538 return freelist_ptr_decode(s, p, ptr_addr); 539 } 540 541 static inline void set_freepointer(struct kmem_cache *s, void *object, void *fp) 542 { 543 unsigned long freeptr_addr = (unsigned long)object + s->offset; 544 545 #ifdef CONFIG_SLAB_FREELIST_HARDENED 546 BUG_ON(object == fp); /* naive detection of double free or corruption */ 547 #endif 548 549 freeptr_addr = (unsigned long)kasan_reset_tag((void *)freeptr_addr); 550 *(freeptr_t *)freeptr_addr = freelist_ptr_encode(s, fp, freeptr_addr); 551 } 552 553 /* 554 * See comment in calculate_sizes(). 555 */ 556 static inline bool freeptr_outside_object(struct kmem_cache *s) 557 { 558 return s->offset >= s->inuse; 559 } 560 561 /* 562 * Return offset of the end of info block which is inuse + free pointer if 563 * not overlapping with object. 564 */ 565 static inline unsigned int get_info_end(struct kmem_cache *s) 566 { 567 if (freeptr_outside_object(s)) 568 return s->inuse + sizeof(void *); 569 else 570 return s->inuse; 571 } 572 573 /* Loop over all objects in a slab */ 574 #define for_each_object(__p, __s, __addr, __objects) \ 575 for (__p = fixup_red_left(__s, __addr); \ 576 __p < (__addr) + (__objects) * (__s)->size; \ 577 __p += (__s)->size) 578 579 static inline unsigned int order_objects(unsigned int order, unsigned int size) 580 { 581 return ((unsigned int)PAGE_SIZE << order) / size; 582 } 583 584 static inline struct kmem_cache_order_objects oo_make(unsigned int order, 585 unsigned int size) 586 { 587 struct kmem_cache_order_objects x = { 588 (order << OO_SHIFT) + order_objects(order, size) 589 }; 590 591 return x; 592 } 593 594 static inline unsigned int oo_order(struct kmem_cache_order_objects x) 595 { 596 return x.x >> OO_SHIFT; 597 } 598 599 static inline unsigned int oo_objects(struct kmem_cache_order_objects x) 600 { 601 return x.x & OO_MASK; 602 } 603 604 /* 605 * If network-based swap is enabled, slub must keep track of whether memory 606 * were allocated from pfmemalloc reserves. 607 */ 608 static inline bool slab_test_pfmemalloc(const struct slab *slab) 609 { 610 return test_bit(SL_pfmemalloc, &slab->flags.f); 611 } 612 613 static inline void slab_set_pfmemalloc(struct slab *slab) 614 { 615 set_bit(SL_pfmemalloc, &slab->flags.f); 616 } 617 618 static inline void __slab_clear_pfmemalloc(struct slab *slab) 619 { 620 __clear_bit(SL_pfmemalloc, &slab->flags.f); 621 } 622 623 /* 624 * Per slab locking using the pagelock 625 */ 626 static __always_inline void slab_lock(struct slab *slab) 627 { 628 bit_spin_lock(SL_locked, &slab->flags.f); 629 } 630 631 static __always_inline void slab_unlock(struct slab *slab) 632 { 633 bit_spin_unlock(SL_locked, &slab->flags.f); 634 } 635 636 static inline bool 637 __update_freelist_fast(struct slab *slab, struct freelist_counters *old, 638 struct freelist_counters *new) 639 { 640 #ifdef system_has_freelist_aba 641 return try_cmpxchg_freelist(&slab->freelist_counters, 642 &old->freelist_counters, 643 new->freelist_counters); 644 #else 645 return false; 646 #endif 647 } 648 649 static inline bool 650 __update_freelist_slow(struct slab *slab, struct freelist_counters *old, 651 struct freelist_counters *new) 652 { 653 bool ret = false; 654 655 slab_lock(slab); 656 if (slab->freelist == old->freelist && 657 slab->counters == old->counters) { 658 slab->freelist = new->freelist; 659 /* prevent tearing for the read in get_partial_node_bulk() */ 660 WRITE_ONCE(slab->counters, new->counters); 661 ret = true; 662 } 663 slab_unlock(slab); 664 665 return ret; 666 } 667 668 /* 669 * Interrupts must be disabled (for the fallback code to work right), typically 670 * by an _irqsave() lock variant. On PREEMPT_RT the preempt_disable(), which is 671 * part of bit_spin_lock(), is sufficient because the policy is not to allow any 672 * allocation/ free operation in hardirq context. Therefore nothing can 673 * interrupt the operation. 674 */ 675 static inline bool __slab_update_freelist(struct kmem_cache *s, struct slab *slab, 676 struct freelist_counters *old, struct freelist_counters *new, const char *n) 677 { 678 bool ret; 679 680 if (!IS_ENABLED(CONFIG_PREEMPT_RT)) 681 lockdep_assert_irqs_disabled(); 682 683 if (s->flags & __CMPXCHG_DOUBLE) 684 ret = __update_freelist_fast(slab, old, new); 685 else 686 ret = __update_freelist_slow(slab, old, new); 687 688 if (likely(ret)) 689 return true; 690 691 cpu_relax(); 692 stat(s, CMPXCHG_DOUBLE_FAIL); 693 694 #ifdef SLUB_DEBUG_CMPXCHG 695 pr_info("%s %s: cmpxchg double redo ", n, s->name); 696 #endif 697 698 return false; 699 } 700 701 static inline bool slab_update_freelist(struct kmem_cache *s, struct slab *slab, 702 struct freelist_counters *old, struct freelist_counters *new, const char *n) 703 { 704 bool ret; 705 706 if (s->flags & __CMPXCHG_DOUBLE) { 707 ret = __update_freelist_fast(slab, old, new); 708 } else { 709 unsigned long flags; 710 711 local_irq_save(flags); 712 ret = __update_freelist_slow(slab, old, new); 713 local_irq_restore(flags); 714 } 715 if (likely(ret)) 716 return true; 717 718 cpu_relax(); 719 stat(s, CMPXCHG_DOUBLE_FAIL); 720 721 #ifdef SLUB_DEBUG_CMPXCHG 722 pr_info("%s %s: cmpxchg double redo ", n, s->name); 723 #endif 724 725 return false; 726 } 727 728 /* 729 * kmalloc caches has fixed sizes (mostly power of 2), and kmalloc() API 730 * family will round up the real request size to these fixed ones, so 731 * there could be an extra area than what is requested. Save the original 732 * request size in the meta data area, for better debug and sanity check. 733 */ 734 static inline void set_orig_size(struct kmem_cache *s, 735 void *object, unsigned long orig_size) 736 { 737 void *p = kasan_reset_tag(object); 738 739 if (!slub_debug_orig_size(s)) 740 return; 741 742 p += get_info_end(s); 743 p += sizeof(struct track) * 2; 744 745 *(unsigned long *)p = orig_size; 746 } 747 748 static inline unsigned long get_orig_size(struct kmem_cache *s, void *object) 749 { 750 void *p = kasan_reset_tag(object); 751 752 if (is_kfence_address(object)) 753 return kfence_ksize(object); 754 755 if (!slub_debug_orig_size(s)) 756 return s->object_size; 757 758 p += get_info_end(s); 759 p += sizeof(struct track) * 2; 760 761 return *(unsigned long *)p; 762 } 763 764 #ifdef CONFIG_SLAB_OBJ_EXT 765 766 /* 767 * Check if memory cgroup or memory allocation profiling is enabled. 768 * If enabled, SLUB tries to reduce memory overhead of accounting 769 * slab objects. If neither is enabled when this function is called, 770 * the optimization is simply skipped to avoid affecting caches that do not 771 * need slabobj_ext metadata. 772 * 773 * However, this may disable optimization when memory cgroup or memory 774 * allocation profiling is used, but slabs are created too early 775 * even before those subsystems are initialized. 776 */ 777 static inline bool need_slab_obj_exts(struct kmem_cache *s) 778 { 779 if (s->flags & SLAB_NO_OBJ_EXT) 780 return false; 781 782 if (memcg_kmem_online() && (s->flags & SLAB_ACCOUNT)) 783 return true; 784 785 if (mem_alloc_profiling_enabled()) 786 return true; 787 788 return false; 789 } 790 791 static inline unsigned int obj_exts_size_in_slab(struct slab *slab) 792 { 793 return sizeof(struct slabobj_ext) * slab->objects; 794 } 795 796 static inline unsigned long obj_exts_offset_in_slab(struct kmem_cache *s, 797 struct slab *slab) 798 { 799 unsigned long objext_offset; 800 801 objext_offset = s->size * slab->objects; 802 objext_offset = ALIGN(objext_offset, sizeof(struct slabobj_ext)); 803 return objext_offset; 804 } 805 806 static inline bool obj_exts_fit_within_slab_leftover(struct kmem_cache *s, 807 struct slab *slab) 808 { 809 unsigned long objext_offset = obj_exts_offset_in_slab(s, slab); 810 unsigned long objext_size = obj_exts_size_in_slab(slab); 811 812 return objext_offset + objext_size <= slab_size(slab); 813 } 814 815 static inline bool obj_exts_in_slab(struct kmem_cache *s, struct slab *slab) 816 { 817 unsigned long obj_exts; 818 unsigned long start; 819 unsigned long end; 820 821 obj_exts = slab_obj_exts(slab); 822 if (!obj_exts) 823 return false; 824 825 start = (unsigned long)slab_address(slab); 826 end = start + slab_size(slab); 827 return (obj_exts >= start) && (obj_exts < end); 828 } 829 #else 830 static inline bool need_slab_obj_exts(struct kmem_cache *s) 831 { 832 return false; 833 } 834 835 static inline unsigned int obj_exts_size_in_slab(struct slab *slab) 836 { 837 return 0; 838 } 839 840 static inline unsigned long obj_exts_offset_in_slab(struct kmem_cache *s, 841 struct slab *slab) 842 { 843 return 0; 844 } 845 846 static inline bool obj_exts_fit_within_slab_leftover(struct kmem_cache *s, 847 struct slab *slab) 848 { 849 return false; 850 } 851 852 static inline bool obj_exts_in_slab(struct kmem_cache *s, struct slab *slab) 853 { 854 return false; 855 } 856 857 #endif 858 859 #if defined(CONFIG_SLAB_OBJ_EXT) && defined(CONFIG_64BIT) 860 static bool obj_exts_in_object(struct kmem_cache *s, struct slab *slab) 861 { 862 /* 863 * Note we cannot rely on the SLAB_OBJ_EXT_IN_OBJ flag here and need to 864 * check the stride. A cache can have SLAB_OBJ_EXT_IN_OBJ set, but 865 * allocations within_slab_leftover are preferred. And those may be 866 * possible or not depending on the particular slab's size. 867 */ 868 return obj_exts_in_slab(s, slab) && 869 (slab_get_stride(slab) == s->size); 870 } 871 872 static unsigned int obj_exts_offset_in_object(struct kmem_cache *s) 873 { 874 unsigned int offset = get_info_end(s); 875 876 if (kmem_cache_debug_flags(s, SLAB_STORE_USER)) 877 offset += sizeof(struct track) * 2; 878 879 if (slub_debug_orig_size(s)) 880 offset += sizeof(unsigned long); 881 882 offset += kasan_metadata_size(s, false); 883 884 return offset; 885 } 886 #else 887 static inline bool obj_exts_in_object(struct kmem_cache *s, struct slab *slab) 888 { 889 return false; 890 } 891 892 static inline unsigned int obj_exts_offset_in_object(struct kmem_cache *s) 893 { 894 return 0; 895 } 896 #endif 897 898 #ifdef CONFIG_SLUB_DEBUG 899 900 /* 901 * For debugging context when we want to check if the struct slab pointer 902 * appears to be valid. 903 */ 904 static inline bool validate_slab_ptr(struct slab *slab) 905 { 906 return PageSlab(slab_page(slab)); 907 } 908 909 static unsigned long object_map[BITS_TO_LONGS(MAX_OBJS_PER_PAGE)]; 910 static DEFINE_SPINLOCK(object_map_lock); 911 912 static void __fill_map(unsigned long *obj_map, struct kmem_cache *s, 913 struct slab *slab) 914 { 915 void *addr = slab_address(slab); 916 void *p; 917 918 bitmap_zero(obj_map, slab->objects); 919 920 for (p = slab->freelist; p; p = get_freepointer(s, p)) 921 set_bit(__obj_to_index(s, addr, p), obj_map); 922 } 923 924 #if IS_ENABLED(CONFIG_KUNIT) 925 static bool slab_add_kunit_errors(void) 926 { 927 struct kunit_resource *resource; 928 929 if (!kunit_get_current_test()) 930 return false; 931 932 resource = kunit_find_named_resource(current->kunit_test, "slab_errors"); 933 if (!resource) 934 return false; 935 936 (*(int *)resource->data)++; 937 kunit_put_resource(resource); 938 return true; 939 } 940 941 bool slab_in_kunit_test(void) 942 { 943 struct kunit_resource *resource; 944 945 if (!kunit_get_current_test()) 946 return false; 947 948 resource = kunit_find_named_resource(current->kunit_test, "slab_errors"); 949 if (!resource) 950 return false; 951 952 kunit_put_resource(resource); 953 return true; 954 } 955 #else 956 static inline bool slab_add_kunit_errors(void) { return false; } 957 #endif 958 959 static inline unsigned int size_from_object(struct kmem_cache *s) 960 { 961 if (s->flags & SLAB_RED_ZONE) 962 return s->size - s->red_left_pad; 963 964 return s->size; 965 } 966 967 static inline void *restore_red_left(struct kmem_cache *s, void *p) 968 { 969 if (s->flags & SLAB_RED_ZONE) 970 p -= s->red_left_pad; 971 972 return p; 973 } 974 975 /* 976 * Debug settings: 977 */ 978 #if defined(CONFIG_SLUB_DEBUG_ON) 979 static slab_flags_t slub_debug = DEBUG_DEFAULT_FLAGS; 980 #else 981 static slab_flags_t slub_debug; 982 #endif 983 984 static const char *slub_debug_string __ro_after_init; 985 static int disable_higher_order_debug; 986 987 /* 988 * Object debugging 989 */ 990 991 /* Verify that a pointer has an address that is valid within a slab page */ 992 static inline int check_valid_pointer(struct kmem_cache *s, 993 struct slab *slab, void *object) 994 { 995 void *base; 996 997 if (!object) 998 return 1; 999 1000 base = slab_address(slab); 1001 object = kasan_reset_tag(object); 1002 object = restore_red_left(s, object); 1003 if (object < base || object >= base + slab->objects * s->size || 1004 (object - base) % s->size) { 1005 return 0; 1006 } 1007 1008 return 1; 1009 } 1010 1011 static void print_section(char *level, char *text, u8 *addr, 1012 unsigned int length) 1013 { 1014 metadata_access_enable(); 1015 print_hex_dump(level, text, DUMP_PREFIX_ADDRESS, 1016 16, 1, kasan_reset_tag((void *)addr), length, 1); 1017 metadata_access_disable(); 1018 } 1019 1020 static struct track *get_track(struct kmem_cache *s, void *object, 1021 enum track_item alloc) 1022 { 1023 struct track *p; 1024 1025 p = object + get_info_end(s); 1026 1027 return kasan_reset_tag(p + alloc); 1028 } 1029 1030 #ifdef CONFIG_STACKDEPOT 1031 static noinline depot_stack_handle_t set_track_prepare(gfp_t gfp_flags) 1032 { 1033 depot_stack_handle_t handle; 1034 unsigned long entries[TRACK_ADDRS_COUNT]; 1035 unsigned int nr_entries; 1036 1037 nr_entries = stack_trace_save(entries, ARRAY_SIZE(entries), 3); 1038 handle = stack_depot_save(entries, nr_entries, gfp_flags); 1039 1040 return handle; 1041 } 1042 #else 1043 static inline depot_stack_handle_t set_track_prepare(gfp_t gfp_flags) 1044 { 1045 return 0; 1046 } 1047 #endif 1048 1049 static void set_track_update(struct kmem_cache *s, void *object, 1050 enum track_item alloc, unsigned long addr, 1051 depot_stack_handle_t handle) 1052 { 1053 struct track *p = get_track(s, object, alloc); 1054 1055 #ifdef CONFIG_STACKDEPOT 1056 p->handle = handle; 1057 #endif 1058 p->addr = addr; 1059 p->cpu = raw_smp_processor_id(); 1060 p->pid = current->pid; 1061 p->when = jiffies; 1062 } 1063 1064 static __always_inline void set_track(struct kmem_cache *s, void *object, 1065 enum track_item alloc, unsigned long addr, gfp_t gfp_flags) 1066 { 1067 depot_stack_handle_t handle = set_track_prepare(gfp_flags); 1068 1069 set_track_update(s, object, alloc, addr, handle); 1070 } 1071 1072 static void init_tracking(struct kmem_cache *s, void *object) 1073 { 1074 struct track *p; 1075 1076 if (!(s->flags & SLAB_STORE_USER)) 1077 return; 1078 1079 p = get_track(s, object, TRACK_ALLOC); 1080 memset(p, 0, 2*sizeof(struct track)); 1081 } 1082 1083 static void print_track(const char *s, struct track *t, unsigned long pr_time) 1084 { 1085 depot_stack_handle_t handle __maybe_unused; 1086 1087 if (!t->addr) 1088 return; 1089 1090 pr_err("%s in %pS age=%lu cpu=%u pid=%d\n", 1091 s, (void *)t->addr, pr_time - t->when, t->cpu, t->pid); 1092 #ifdef CONFIG_STACKDEPOT 1093 handle = READ_ONCE(t->handle); 1094 if (handle) 1095 stack_depot_print(handle); 1096 else 1097 pr_err("object allocation/free stack trace missing\n"); 1098 #endif 1099 } 1100 1101 void print_tracking(struct kmem_cache *s, void *object) 1102 { 1103 unsigned long pr_time = jiffies; 1104 if (!(s->flags & SLAB_STORE_USER)) 1105 return; 1106 1107 print_track("Allocated", get_track(s, object, TRACK_ALLOC), pr_time); 1108 print_track("Freed", get_track(s, object, TRACK_FREE), pr_time); 1109 } 1110 1111 static void print_slab_info(const struct slab *slab) 1112 { 1113 pr_err("Slab 0x%p objects=%u used=%u fp=0x%p flags=%pGp\n", 1114 slab, slab->objects, slab->inuse, slab->freelist, 1115 &slab->flags.f); 1116 } 1117 1118 void skip_orig_size_check(struct kmem_cache *s, const void *object) 1119 { 1120 set_orig_size(s, (void *)object, s->object_size); 1121 } 1122 1123 static void __slab_bug(struct kmem_cache *s, const char *fmt, va_list argsp) 1124 { 1125 struct va_format vaf; 1126 va_list args; 1127 1128 va_copy(args, argsp); 1129 vaf.fmt = fmt; 1130 vaf.va = &args; 1131 pr_err("=============================================================================\n"); 1132 pr_err("BUG %s (%s): %pV\n", s ? s->name : "<unknown>", print_tainted(), &vaf); 1133 pr_err("-----------------------------------------------------------------------------\n\n"); 1134 va_end(args); 1135 } 1136 1137 static void slab_bug(struct kmem_cache *s, const char *fmt, ...) 1138 { 1139 va_list args; 1140 1141 va_start(args, fmt); 1142 __slab_bug(s, fmt, args); 1143 va_end(args); 1144 } 1145 1146 __printf(2, 3) 1147 static void slab_fix(struct kmem_cache *s, const char *fmt, ...) 1148 { 1149 struct va_format vaf; 1150 va_list args; 1151 1152 if (slab_add_kunit_errors()) 1153 return; 1154 1155 va_start(args, fmt); 1156 vaf.fmt = fmt; 1157 vaf.va = &args; 1158 pr_err("FIX %s: %pV\n", s->name, &vaf); 1159 va_end(args); 1160 } 1161 1162 static void print_trailer(struct kmem_cache *s, struct slab *slab, u8 *p) 1163 { 1164 unsigned int off; /* Offset of last byte */ 1165 u8 *addr = slab_address(slab); 1166 1167 print_tracking(s, p); 1168 1169 print_slab_info(slab); 1170 1171 pr_err("Object 0x%p @offset=%tu fp=0x%p\n\n", 1172 p, p - addr, get_freepointer(s, p)); 1173 1174 if (s->flags & SLAB_RED_ZONE) 1175 print_section(KERN_ERR, "Redzone ", p - s->red_left_pad, 1176 s->red_left_pad); 1177 else if (p > addr + 16) 1178 print_section(KERN_ERR, "Bytes b4 ", p - 16, 16); 1179 1180 print_section(KERN_ERR, "Object ", p, 1181 min_t(unsigned int, s->object_size, PAGE_SIZE)); 1182 if (s->flags & SLAB_RED_ZONE) 1183 print_section(KERN_ERR, "Redzone ", p + s->object_size, 1184 s->inuse - s->object_size); 1185 1186 off = get_info_end(s); 1187 1188 if (s->flags & SLAB_STORE_USER) 1189 off += 2 * sizeof(struct track); 1190 1191 if (slub_debug_orig_size(s)) 1192 off += sizeof(unsigned long); 1193 1194 off += kasan_metadata_size(s, false); 1195 1196 if (obj_exts_in_object(s, slab)) 1197 off += sizeof(struct slabobj_ext); 1198 1199 if (off != size_from_object(s)) 1200 /* Beginning of the filler is the free pointer */ 1201 print_section(KERN_ERR, "Padding ", p + off, 1202 size_from_object(s) - off); 1203 } 1204 1205 static void object_err(struct kmem_cache *s, struct slab *slab, 1206 u8 *object, const char *reason) 1207 { 1208 if (slab_add_kunit_errors()) 1209 return; 1210 1211 slab_bug(s, reason); 1212 if (!object || !check_valid_pointer(s, slab, object)) { 1213 print_slab_info(slab); 1214 pr_err("Invalid pointer 0x%p\n", object); 1215 } else { 1216 print_trailer(s, slab, object); 1217 } 1218 add_taint(TAINT_BAD_PAGE, LOCKDEP_NOW_UNRELIABLE); 1219 1220 WARN_ON(1); 1221 } 1222 1223 static void __slab_err(struct slab *slab) 1224 { 1225 if (slab_in_kunit_test()) 1226 return; 1227 1228 print_slab_info(slab); 1229 add_taint(TAINT_BAD_PAGE, LOCKDEP_NOW_UNRELIABLE); 1230 1231 WARN_ON(1); 1232 } 1233 1234 static __printf(3, 4) void slab_err(struct kmem_cache *s, struct slab *slab, 1235 const char *fmt, ...) 1236 { 1237 va_list args; 1238 1239 if (slab_add_kunit_errors()) 1240 return; 1241 1242 va_start(args, fmt); 1243 __slab_bug(s, fmt, args); 1244 va_end(args); 1245 1246 __slab_err(slab); 1247 } 1248 1249 static void init_object(struct kmem_cache *s, void *object, u8 val) 1250 { 1251 u8 *p = kasan_reset_tag(object); 1252 unsigned int poison_size = s->object_size; 1253 1254 if (s->flags & SLAB_RED_ZONE) { 1255 /* 1256 * Here and below, avoid overwriting the KMSAN shadow. Keeping 1257 * the shadow makes it possible to distinguish uninit-value 1258 * from use-after-free. 1259 */ 1260 memset_no_sanitize_memory(p - s->red_left_pad, val, 1261 s->red_left_pad); 1262 1263 if (slub_debug_orig_size(s) && val == SLUB_RED_ACTIVE) { 1264 /* 1265 * Redzone the extra allocated space by kmalloc than 1266 * requested, and the poison size will be limited to 1267 * the original request size accordingly. 1268 */ 1269 poison_size = get_orig_size(s, object); 1270 } 1271 } 1272 1273 if (s->flags & __OBJECT_POISON) { 1274 memset_no_sanitize_memory(p, POISON_FREE, poison_size - 1); 1275 memset_no_sanitize_memory(p + poison_size - 1, POISON_END, 1); 1276 } 1277 1278 if (s->flags & SLAB_RED_ZONE) 1279 memset_no_sanitize_memory(p + poison_size, val, 1280 s->inuse - poison_size); 1281 } 1282 1283 static void restore_bytes(struct kmem_cache *s, const char *message, u8 data, 1284 void *from, void *to) 1285 { 1286 slab_fix(s, "Restoring %s 0x%p-0x%p=0x%x", message, from, to - 1, data); 1287 memset(from, data, to - from); 1288 } 1289 1290 #ifdef CONFIG_KMSAN 1291 #define pad_check_attributes noinline __no_kmsan_checks 1292 #else 1293 #define pad_check_attributes 1294 #endif 1295 1296 static pad_check_attributes int 1297 check_bytes_and_report(struct kmem_cache *s, struct slab *slab, 1298 u8 *object, const char *what, u8 *start, unsigned int value, 1299 unsigned int bytes, bool slab_obj_print) 1300 { 1301 u8 *fault; 1302 u8 *end; 1303 u8 *addr = slab_address(slab); 1304 1305 metadata_access_enable(); 1306 fault = memchr_inv(kasan_reset_tag(start), value, bytes); 1307 metadata_access_disable(); 1308 if (!fault) 1309 return 1; 1310 1311 end = start + bytes; 1312 while (end > fault && end[-1] == value) 1313 end--; 1314 1315 if (slab_add_kunit_errors()) 1316 goto skip_bug_print; 1317 1318 pr_err("[%s overwritten] 0x%p-0x%p @offset=%tu. First byte 0x%x instead of 0x%x\n", 1319 what, fault, end - 1, fault - addr, fault[0], value); 1320 1321 if (slab_obj_print) 1322 object_err(s, slab, object, "Object corrupt"); 1323 1324 skip_bug_print: 1325 restore_bytes(s, what, value, fault, end); 1326 return 0; 1327 } 1328 1329 /* 1330 * Object field layout: 1331 * 1332 * [Left redzone padding] (if SLAB_RED_ZONE) 1333 * - Field size: s->red_left_pad 1334 * - Immediately precedes each object when SLAB_RED_ZONE is set. 1335 * - Filled with 0xbb (SLUB_RED_INACTIVE) for inactive objects and 1336 * 0xcc (SLUB_RED_ACTIVE) for objects in use when SLAB_RED_ZONE. 1337 * 1338 * [Object bytes] (object address starts here) 1339 * - Field size: s->object_size 1340 * - Object payload bytes. 1341 * - If the freepointer may overlap the object, it is stored inside 1342 * the object (typically near the middle). 1343 * - Poisoning uses 0x6b (POISON_FREE) and the last byte is 1344 * 0xa5 (POISON_END) when __OBJECT_POISON is enabled. 1345 * 1346 * [Word-align padding] (right redzone when SLAB_RED_ZONE is set) 1347 * - Field size: s->inuse - s->object_size 1348 * - If redzoning is enabled and ALIGN(size, sizeof(void *)) adds no 1349 * padding, explicitly extend by one word so the right redzone is 1350 * non-empty. 1351 * - Filled with 0xbb (SLUB_RED_INACTIVE) for inactive objects and 1352 * 0xcc (SLUB_RED_ACTIVE) for objects in use when SLAB_RED_ZONE. 1353 * 1354 * [Metadata starts at object + s->inuse] 1355 * - A. freelist pointer (if freeptr_outside_object) 1356 * - B. alloc tracking (SLAB_STORE_USER) 1357 * - C. free tracking (SLAB_STORE_USER) 1358 * - D. original request size (SLAB_KMALLOC && SLAB_STORE_USER) 1359 * - E. KASAN metadata (if enabled) 1360 * 1361 * [Mandatory padding] (if CONFIG_SLUB_DEBUG && SLAB_RED_ZONE) 1362 * - One mandatory debug word to guarantee a minimum poisoned gap 1363 * between metadata and the next object, independent of alignment. 1364 * - Filled with 0x5a (POISON_INUSE) when SLAB_POISON is set. 1365 * [Final alignment padding] 1366 * - Bytes added by ALIGN(size, s->align) to reach s->size. 1367 * - When the padding is large enough, it can be used to store 1368 * struct slabobj_ext for accounting metadata (obj_exts_in_object()). 1369 * - The remaining bytes (if any) are filled with 0x5a (POISON_INUSE) 1370 * when SLAB_POISON is set. 1371 * 1372 * Notes: 1373 * - Redzones are filled by init_object() with SLUB_RED_ACTIVE/INACTIVE. 1374 * - Object contents are poisoned with POISON_FREE/END when __OBJECT_POISON. 1375 * - The trailing padding is pre-filled with POISON_INUSE by 1376 * setup_slab_debug() when SLAB_POISON is set, and is validated by 1377 * check_pad_bytes(). 1378 * - The first object pointer is slab_address(slab) + 1379 * (s->red_left_pad if redzoning); subsequent objects are reached by 1380 * adding s->size each time. 1381 * 1382 * If a slab cache flag relies on specific metadata to exist at a fixed 1383 * offset, the flag must be included in SLAB_NEVER_MERGE to prevent merging. 1384 * Otherwise, the cache would misbehave as s->object_size and s->inuse are 1385 * adjusted during cache merging (see __kmem_cache_alias()). 1386 */ 1387 static int check_pad_bytes(struct kmem_cache *s, struct slab *slab, u8 *p) 1388 { 1389 unsigned long off = get_info_end(s); /* The end of info */ 1390 1391 if (s->flags & SLAB_STORE_USER) { 1392 /* We also have user information there */ 1393 off += 2 * sizeof(struct track); 1394 1395 if (s->flags & SLAB_KMALLOC) 1396 off += sizeof(unsigned long); 1397 } 1398 1399 off += kasan_metadata_size(s, false); 1400 1401 if (obj_exts_in_object(s, slab)) 1402 off += sizeof(struct slabobj_ext); 1403 1404 if (size_from_object(s) == off) 1405 return 1; 1406 1407 return check_bytes_and_report(s, slab, p, "Object padding", 1408 p + off, POISON_INUSE, size_from_object(s) - off, true); 1409 } 1410 1411 /* Check the pad bytes at the end of a slab page */ 1412 static pad_check_attributes void 1413 slab_pad_check(struct kmem_cache *s, struct slab *slab) 1414 { 1415 u8 *start; 1416 u8 *fault; 1417 u8 *end; 1418 u8 *pad; 1419 int length; 1420 int remainder; 1421 1422 if (!(s->flags & SLAB_POISON)) 1423 return; 1424 1425 start = slab_address(slab); 1426 length = slab_size(slab); 1427 end = start + length; 1428 1429 if (obj_exts_in_slab(s, slab) && !obj_exts_in_object(s, slab)) { 1430 remainder = length; 1431 remainder -= obj_exts_offset_in_slab(s, slab); 1432 remainder -= obj_exts_size_in_slab(slab); 1433 } else { 1434 remainder = length % s->size; 1435 } 1436 1437 if (!remainder) 1438 return; 1439 1440 pad = end - remainder; 1441 metadata_access_enable(); 1442 fault = memchr_inv(kasan_reset_tag(pad), POISON_INUSE, remainder); 1443 metadata_access_disable(); 1444 if (!fault) 1445 return; 1446 while (end > fault && end[-1] == POISON_INUSE) 1447 end--; 1448 1449 slab_bug(s, "Padding overwritten. 0x%p-0x%p @offset=%tu", 1450 fault, end - 1, fault - start); 1451 print_section(KERN_ERR, "Padding ", pad, remainder); 1452 __slab_err(slab); 1453 1454 restore_bytes(s, "slab padding", POISON_INUSE, fault, end); 1455 } 1456 1457 static int check_object(struct kmem_cache *s, struct slab *slab, 1458 void *object, u8 val) 1459 { 1460 u8 *p = object; 1461 u8 *endobject = object + s->object_size; 1462 unsigned int orig_size, kasan_meta_size; 1463 int ret = 1; 1464 1465 if (s->flags & SLAB_RED_ZONE) { 1466 if (!check_bytes_and_report(s, slab, object, "Left Redzone", 1467 object - s->red_left_pad, val, s->red_left_pad, ret)) 1468 ret = 0; 1469 1470 if (!check_bytes_and_report(s, slab, object, "Right Redzone", 1471 endobject, val, s->inuse - s->object_size, ret)) 1472 ret = 0; 1473 1474 if (slub_debug_orig_size(s) && val == SLUB_RED_ACTIVE) { 1475 orig_size = get_orig_size(s, object); 1476 1477 if (s->object_size > orig_size && 1478 !check_bytes_and_report(s, slab, object, 1479 "kmalloc Redzone", p + orig_size, 1480 val, s->object_size - orig_size, ret)) { 1481 ret = 0; 1482 } 1483 } 1484 } else { 1485 if ((s->flags & SLAB_POISON) && s->object_size < s->inuse) { 1486 if (!check_bytes_and_report(s, slab, p, "Alignment padding", 1487 endobject, POISON_INUSE, 1488 s->inuse - s->object_size, ret)) 1489 ret = 0; 1490 } 1491 } 1492 1493 if (s->flags & SLAB_POISON) { 1494 if (val != SLUB_RED_ACTIVE && (s->flags & __OBJECT_POISON)) { 1495 /* 1496 * KASAN can save its free meta data inside of the 1497 * object at offset 0. Thus, skip checking the part of 1498 * the redzone that overlaps with the meta data. 1499 */ 1500 kasan_meta_size = kasan_metadata_size(s, true); 1501 if (kasan_meta_size < s->object_size - 1 && 1502 !check_bytes_and_report(s, slab, p, "Poison", 1503 p + kasan_meta_size, POISON_FREE, 1504 s->object_size - kasan_meta_size - 1, ret)) 1505 ret = 0; 1506 if (kasan_meta_size < s->object_size && 1507 !check_bytes_and_report(s, slab, p, "End Poison", 1508 p + s->object_size - 1, POISON_END, 1, ret)) 1509 ret = 0; 1510 } 1511 /* 1512 * check_pad_bytes cleans up on its own. 1513 */ 1514 if (!check_pad_bytes(s, slab, p)) 1515 ret = 0; 1516 } 1517 1518 /* 1519 * Cannot check freepointer while object is allocated if 1520 * object and freepointer overlap. 1521 */ 1522 if ((freeptr_outside_object(s) || val != SLUB_RED_ACTIVE) && 1523 !check_valid_pointer(s, slab, get_freepointer(s, p))) { 1524 object_err(s, slab, p, "Freepointer corrupt"); 1525 /* 1526 * No choice but to zap it and thus lose the remainder 1527 * of the free objects in this slab. May cause 1528 * another error because the object count is now wrong. 1529 */ 1530 set_freepointer(s, p, NULL); 1531 ret = 0; 1532 } 1533 1534 return ret; 1535 } 1536 1537 /* 1538 * Checks if the slab state looks sane. Assumes the struct slab pointer 1539 * was either obtained in a way that ensures it's valid, or validated 1540 * by validate_slab_ptr() 1541 */ 1542 static int check_slab(struct kmem_cache *s, struct slab *slab) 1543 { 1544 int maxobj; 1545 1546 maxobj = order_objects(slab_order(slab), s->size); 1547 if (slab->objects > maxobj) { 1548 slab_err(s, slab, "objects %u > max %u", 1549 slab->objects, maxobj); 1550 return 0; 1551 } 1552 if (slab->inuse > slab->objects) { 1553 slab_err(s, slab, "inuse %u > max %u", 1554 slab->inuse, slab->objects); 1555 return 0; 1556 } 1557 if (slab->frozen) { 1558 slab_err(s, slab, "Slab disabled since SLUB metadata consistency check failed"); 1559 return 0; 1560 } 1561 1562 /* Slab_pad_check fixes things up after itself */ 1563 slab_pad_check(s, slab); 1564 return 1; 1565 } 1566 1567 /* 1568 * Determine if a certain object in a slab is on the freelist. Must hold the 1569 * slab lock to guarantee that the chains are in a consistent state. 1570 */ 1571 static bool on_freelist(struct kmem_cache *s, struct slab *slab, void *search) 1572 { 1573 int nr = 0; 1574 void *fp; 1575 void *object = NULL; 1576 int max_objects; 1577 1578 fp = slab->freelist; 1579 while (fp && nr <= slab->objects) { 1580 if (fp == search) 1581 return true; 1582 if (!check_valid_pointer(s, slab, fp)) { 1583 if (object) { 1584 object_err(s, slab, object, 1585 "Freechain corrupt"); 1586 set_freepointer(s, object, NULL); 1587 break; 1588 } else { 1589 slab_err(s, slab, "Freepointer corrupt"); 1590 slab->freelist = NULL; 1591 slab->inuse = slab->objects; 1592 slab_fix(s, "Freelist cleared"); 1593 return false; 1594 } 1595 } 1596 object = fp; 1597 fp = get_freepointer(s, object); 1598 nr++; 1599 } 1600 1601 if (nr > slab->objects) { 1602 slab_err(s, slab, "Freelist cycle detected"); 1603 slab->freelist = NULL; 1604 slab->inuse = slab->objects; 1605 slab_fix(s, "Freelist cleared"); 1606 return false; 1607 } 1608 1609 max_objects = order_objects(slab_order(slab), s->size); 1610 if (max_objects > MAX_OBJS_PER_PAGE) 1611 max_objects = MAX_OBJS_PER_PAGE; 1612 1613 if (slab->objects != max_objects) { 1614 slab_err(s, slab, "Wrong number of objects. Found %d but should be %d", 1615 slab->objects, max_objects); 1616 slab->objects = max_objects; 1617 slab_fix(s, "Number of objects adjusted"); 1618 } 1619 if (slab->inuse != slab->objects - nr) { 1620 slab_err(s, slab, "Wrong object count. Counter is %d but counted were %d", 1621 slab->inuse, slab->objects - nr); 1622 slab->inuse = slab->objects - nr; 1623 slab_fix(s, "Object count adjusted"); 1624 } 1625 return search == NULL; 1626 } 1627 1628 static void trace(struct kmem_cache *s, struct slab *slab, void *object, 1629 int alloc) 1630 { 1631 if (s->flags & SLAB_TRACE) { 1632 pr_info("TRACE %s %s 0x%p inuse=%d fp=0x%p\n", 1633 s->name, 1634 alloc ? "alloc" : "free", 1635 object, slab->inuse, 1636 slab->freelist); 1637 1638 if (!alloc) 1639 print_section(KERN_INFO, "Object ", (void *)object, 1640 s->object_size); 1641 1642 dump_stack(); 1643 } 1644 } 1645 1646 /* 1647 * Tracking of fully allocated slabs for debugging purposes. 1648 */ 1649 static void add_full(struct kmem_cache *s, 1650 struct kmem_cache_node *n, struct slab *slab) 1651 { 1652 if (!(s->flags & SLAB_STORE_USER)) 1653 return; 1654 1655 lockdep_assert_held(&n->list_lock); 1656 list_add(&slab->slab_list, &n->full); 1657 } 1658 1659 static void remove_full(struct kmem_cache *s, struct kmem_cache_node *n, struct slab *slab) 1660 { 1661 if (!(s->flags & SLAB_STORE_USER)) 1662 return; 1663 1664 lockdep_assert_held(&n->list_lock); 1665 list_del(&slab->slab_list); 1666 } 1667 1668 static inline unsigned long node_nr_slabs(struct kmem_cache_node *n) 1669 { 1670 return atomic_long_read(&n->nr_slabs); 1671 } 1672 1673 static inline void inc_slabs_node(struct kmem_cache *s, int node, int objects) 1674 { 1675 struct kmem_cache_node *n = get_node(s, node); 1676 1677 atomic_long_inc(&n->nr_slabs); 1678 atomic_long_add(objects, &n->total_objects); 1679 } 1680 static inline void dec_slabs_node(struct kmem_cache *s, int node, int objects) 1681 { 1682 struct kmem_cache_node *n = get_node(s, node); 1683 1684 atomic_long_dec(&n->nr_slabs); 1685 atomic_long_sub(objects, &n->total_objects); 1686 } 1687 1688 /* Object debug checks for alloc/free paths */ 1689 static void setup_object_debug(struct kmem_cache *s, void *object) 1690 { 1691 if (!kmem_cache_debug_flags(s, SLAB_STORE_USER|SLAB_RED_ZONE|__OBJECT_POISON)) 1692 return; 1693 1694 init_object(s, object, SLUB_RED_INACTIVE); 1695 init_tracking(s, object); 1696 } 1697 1698 static 1699 void setup_slab_debug(struct kmem_cache *s, struct slab *slab, void *addr) 1700 { 1701 if (!kmem_cache_debug_flags(s, SLAB_POISON)) 1702 return; 1703 1704 metadata_access_enable(); 1705 memset(kasan_reset_tag(addr), POISON_INUSE, slab_size(slab)); 1706 metadata_access_disable(); 1707 } 1708 1709 static inline int alloc_consistency_checks(struct kmem_cache *s, 1710 struct slab *slab, void *object) 1711 { 1712 if (!check_slab(s, slab)) 1713 return 0; 1714 1715 if (!check_valid_pointer(s, slab, object)) { 1716 object_err(s, slab, object, "Freelist Pointer check fails"); 1717 return 0; 1718 } 1719 1720 if (!check_object(s, slab, object, SLUB_RED_INACTIVE)) 1721 return 0; 1722 1723 return 1; 1724 } 1725 1726 static noinline bool alloc_debug_processing(struct kmem_cache *s, 1727 struct slab *slab, void *object, int orig_size) 1728 { 1729 if (s->flags & SLAB_CONSISTENCY_CHECKS) { 1730 if (!alloc_consistency_checks(s, slab, object)) 1731 goto bad; 1732 } 1733 1734 /* Success. Perform special debug activities for allocs */ 1735 trace(s, slab, object, 1); 1736 set_orig_size(s, object, orig_size); 1737 init_object(s, object, SLUB_RED_ACTIVE); 1738 return true; 1739 1740 bad: 1741 /* 1742 * Let's do the best we can to avoid issues in the future. Marking all 1743 * objects as used avoids touching the remaining objects. 1744 */ 1745 slab_fix(s, "Marking all objects used"); 1746 slab->inuse = slab->objects; 1747 slab->freelist = NULL; 1748 slab->frozen = 1; /* mark consistency-failed slab as frozen */ 1749 1750 return false; 1751 } 1752 1753 static inline int free_consistency_checks(struct kmem_cache *s, 1754 struct slab *slab, void *object, unsigned long addr) 1755 { 1756 if (!check_valid_pointer(s, slab, object)) { 1757 slab_err(s, slab, "Invalid object pointer 0x%p", object); 1758 return 0; 1759 } 1760 1761 if (on_freelist(s, slab, object)) { 1762 object_err(s, slab, object, "Object already free"); 1763 return 0; 1764 } 1765 1766 if (!check_object(s, slab, object, SLUB_RED_ACTIVE)) 1767 return 0; 1768 1769 if (unlikely(s != slab->slab_cache)) { 1770 if (!slab->slab_cache) { 1771 slab_err(NULL, slab, "No slab cache for object 0x%p", 1772 object); 1773 } else { 1774 object_err(s, slab, object, 1775 "page slab pointer corrupt."); 1776 } 1777 return 0; 1778 } 1779 return 1; 1780 } 1781 1782 /* 1783 * Parse a block of slab_debug options. Blocks are delimited by ';' 1784 * 1785 * @str: start of block 1786 * @flags: returns parsed flags, or DEBUG_DEFAULT_FLAGS if none specified 1787 * @slabs: return start of list of slabs, or NULL when there's no list 1788 * @init: assume this is initial parsing and not per-kmem-create parsing 1789 * 1790 * returns the start of next block if there's any, or NULL 1791 */ 1792 static const char * 1793 parse_slub_debug_flags(const char *str, slab_flags_t *flags, const char **slabs, bool init) 1794 { 1795 bool higher_order_disable = false; 1796 1797 /* Skip any completely empty blocks */ 1798 while (*str && *str == ';') 1799 str++; 1800 1801 if (*str == ',') { 1802 /* 1803 * No options but restriction on slabs. This means full 1804 * debugging for slabs matching a pattern. 1805 */ 1806 *flags = DEBUG_DEFAULT_FLAGS; 1807 goto check_slabs; 1808 } 1809 *flags = 0; 1810 1811 /* Determine which debug features should be switched on */ 1812 for (; *str && *str != ',' && *str != ';'; str++) { 1813 switch (tolower(*str)) { 1814 case '-': 1815 *flags = 0; 1816 break; 1817 case 'f': 1818 *flags |= SLAB_CONSISTENCY_CHECKS; 1819 break; 1820 case 'z': 1821 *flags |= SLAB_RED_ZONE; 1822 break; 1823 case 'p': 1824 *flags |= SLAB_POISON; 1825 break; 1826 case 'u': 1827 *flags |= SLAB_STORE_USER; 1828 break; 1829 case 't': 1830 *flags |= SLAB_TRACE; 1831 break; 1832 case 'a': 1833 *flags |= SLAB_FAILSLAB; 1834 break; 1835 case 'o': 1836 /* 1837 * Avoid enabling debugging on caches if its minimum 1838 * order would increase as a result. 1839 */ 1840 higher_order_disable = true; 1841 break; 1842 default: 1843 if (init) 1844 pr_err("slab_debug option '%c' unknown. skipped\n", *str); 1845 } 1846 } 1847 check_slabs: 1848 if (*str == ',') 1849 *slabs = ++str; 1850 else 1851 *slabs = NULL; 1852 1853 /* Skip over the slab list */ 1854 while (*str && *str != ';') 1855 str++; 1856 1857 /* Skip any completely empty blocks */ 1858 while (*str && *str == ';') 1859 str++; 1860 1861 if (init && higher_order_disable) 1862 disable_higher_order_debug = 1; 1863 1864 if (*str) 1865 return str; 1866 else 1867 return NULL; 1868 } 1869 1870 static int __init setup_slub_debug(const char *str, const struct kernel_param *kp) 1871 { 1872 slab_flags_t flags; 1873 slab_flags_t global_flags; 1874 const char *saved_str; 1875 const char *slab_list; 1876 bool global_slub_debug_changed = false; 1877 bool slab_list_specified = false; 1878 1879 global_flags = DEBUG_DEFAULT_FLAGS; 1880 if (!str || !*str) 1881 /* 1882 * No options specified. Switch on full debugging. 1883 */ 1884 goto out; 1885 1886 saved_str = str; 1887 while (str) { 1888 str = parse_slub_debug_flags(str, &flags, &slab_list, true); 1889 1890 if (!slab_list) { 1891 global_flags = flags; 1892 global_slub_debug_changed = true; 1893 } else { 1894 slab_list_specified = true; 1895 if (flags & SLAB_STORE_USER) 1896 stack_depot_request_early_init(); 1897 } 1898 } 1899 1900 /* 1901 * For backwards compatibility, a single list of flags with list of 1902 * slabs means debugging is only changed for those slabs, so the global 1903 * slab_debug should be unchanged (0 or DEBUG_DEFAULT_FLAGS, depending 1904 * on CONFIG_SLUB_DEBUG_ON). We can extended that to multiple lists as 1905 * long as there is no option specifying flags without a slab list. 1906 */ 1907 if (slab_list_specified) { 1908 if (!global_slub_debug_changed) 1909 global_flags = slub_debug; 1910 slub_debug_string = saved_str; 1911 } 1912 out: 1913 slub_debug = global_flags; 1914 if (slub_debug & SLAB_STORE_USER) 1915 stack_depot_request_early_init(); 1916 if (slub_debug != 0 || slub_debug_string) 1917 static_branch_enable(&slub_debug_enabled); 1918 else 1919 static_branch_disable(&slub_debug_enabled); 1920 if ((static_branch_unlikely(&init_on_alloc) || 1921 static_branch_unlikely(&init_on_free)) && 1922 (slub_debug & SLAB_POISON)) 1923 pr_info("mem auto-init: SLAB_POISON will take precedence over init_on_alloc/init_on_free\n"); 1924 return 0; 1925 } 1926 1927 static const struct kernel_param_ops param_ops_slab_debug __initconst = { 1928 .flags = KERNEL_PARAM_OPS_FL_NOARG, 1929 .set = setup_slub_debug, 1930 }; 1931 __core_param_cb(slab_debug, ¶m_ops_slab_debug, NULL, 0); 1932 __core_param_cb(slub_debug, ¶m_ops_slab_debug, NULL, 0); 1933 1934 /* 1935 * kmem_cache_flags - apply debugging options to the cache 1936 * @flags: flags to set 1937 * @name: name of the cache 1938 * 1939 * Debug option(s) are applied to @flags. In addition to the debug 1940 * option(s), if a slab name (or multiple) is specified i.e. 1941 * slab_debug=<Debug-Options>,<slab name1>,<slab name2> ... 1942 * then only the select slabs will receive the debug option(s). 1943 */ 1944 slab_flags_t kmem_cache_flags(slab_flags_t flags, const char *name) 1945 { 1946 const char *iter; 1947 size_t len; 1948 const char *next_block; 1949 slab_flags_t block_flags; 1950 slab_flags_t slub_debug_local = slub_debug; 1951 1952 if (flags & SLAB_NO_USER_FLAGS) 1953 return flags; 1954 1955 /* 1956 * If the slab cache is for debugging (e.g. kmemleak) then 1957 * don't store user (stack trace) information by default, 1958 * but let the user enable it via the command line below. 1959 */ 1960 if (flags & SLAB_NOLEAKTRACE) 1961 slub_debug_local &= ~SLAB_STORE_USER; 1962 1963 len = strlen(name); 1964 next_block = slub_debug_string; 1965 /* Go through all blocks of debug options, see if any matches our slab's name */ 1966 while (next_block) { 1967 next_block = parse_slub_debug_flags(next_block, &block_flags, &iter, false); 1968 if (!iter) 1969 continue; 1970 /* Found a block that has a slab list, search it */ 1971 while (*iter) { 1972 const char *end, *glob; 1973 size_t cmplen; 1974 1975 end = strchrnul(iter, ','); 1976 if (next_block && next_block < end) 1977 end = next_block - 1; 1978 1979 glob = strnchr(iter, end - iter, '*'); 1980 if (glob) 1981 cmplen = glob - iter; 1982 else 1983 cmplen = max_t(size_t, len, (end - iter)); 1984 1985 if (!strncmp(name, iter, cmplen)) { 1986 flags |= block_flags; 1987 return flags; 1988 } 1989 1990 if (!*end || *end == ';') 1991 break; 1992 iter = end + 1; 1993 } 1994 } 1995 1996 return flags | slub_debug_local; 1997 } 1998 #else /* !CONFIG_SLUB_DEBUG */ 1999 static inline void setup_object_debug(struct kmem_cache *s, void *object) {} 2000 static inline 2001 void setup_slab_debug(struct kmem_cache *s, struct slab *slab, void *addr) {} 2002 2003 static inline bool alloc_debug_processing(struct kmem_cache *s, 2004 struct slab *slab, void *object, int orig_size) { return true; } 2005 2006 static inline bool free_debug_processing(struct kmem_cache *s, 2007 struct slab *slab, void *head, void *tail, int *bulk_cnt, 2008 unsigned long addr, depot_stack_handle_t handle) { return true; } 2009 2010 static inline void slab_pad_check(struct kmem_cache *s, struct slab *slab) {} 2011 static inline int check_object(struct kmem_cache *s, struct slab *slab, 2012 void *object, u8 val) { return 1; } 2013 static inline depot_stack_handle_t set_track_prepare(gfp_t gfp_flags) { return 0; } 2014 static inline void set_track(struct kmem_cache *s, void *object, 2015 enum track_item alloc, unsigned long addr, gfp_t gfp_flags) {} 2016 static inline void add_full(struct kmem_cache *s, struct kmem_cache_node *n, 2017 struct slab *slab) {} 2018 static inline void remove_full(struct kmem_cache *s, struct kmem_cache_node *n, 2019 struct slab *slab) {} 2020 slab_flags_t kmem_cache_flags(slab_flags_t flags, const char *name) 2021 { 2022 return flags; 2023 } 2024 #define slub_debug 0 2025 2026 #define disable_higher_order_debug 0 2027 2028 static inline unsigned long node_nr_slabs(struct kmem_cache_node *n) 2029 { return 0; } 2030 static inline void inc_slabs_node(struct kmem_cache *s, int node, 2031 int objects) {} 2032 static inline void dec_slabs_node(struct kmem_cache *s, int node, 2033 int objects) {} 2034 #endif /* CONFIG_SLUB_DEBUG */ 2035 2036 /* 2037 * The allocated objcg pointers array is not accounted directly. 2038 * Moreover, it should not come from DMA buffer and is not readily 2039 * reclaimable. So those GFP bits should be masked off. 2040 */ 2041 #define OBJCGS_CLEAR_MASK (__GFP_DMA | __GFP_RECLAIMABLE | \ 2042 __GFP_ACCOUNT | __GFP_NOFAIL) 2043 2044 #ifdef CONFIG_SLAB_OBJ_EXT 2045 2046 #ifdef CONFIG_MEM_ALLOC_PROFILING_DEBUG 2047 2048 static inline void mark_obj_codetag_empty(const void *obj) 2049 { 2050 struct slab *obj_slab; 2051 unsigned long slab_exts; 2052 2053 obj_slab = virt_to_slab(obj); 2054 slab_exts = slab_obj_exts(obj_slab); 2055 if (slab_exts) { 2056 get_slab_obj_exts(slab_exts); 2057 unsigned int offs = obj_to_index(obj_slab->slab_cache, 2058 obj_slab, obj); 2059 struct slabobj_ext *ext = slab_obj_ext(obj_slab, 2060 slab_exts, offs); 2061 2062 if (unlikely(is_codetag_empty(&ext->ref))) { 2063 put_slab_obj_exts(slab_exts); 2064 return; 2065 } 2066 2067 /* codetag should be NULL here */ 2068 WARN_ON(ext->ref.ct); 2069 set_codetag_empty(&ext->ref); 2070 put_slab_obj_exts(slab_exts); 2071 } 2072 } 2073 2074 static inline bool mark_failed_objexts_alloc(struct slab *slab) 2075 { 2076 return cmpxchg(&slab->obj_exts, 0, OBJEXTS_ALLOC_FAIL) == 0; 2077 } 2078 2079 static inline void handle_failed_objexts_alloc(unsigned long obj_exts, 2080 struct slabobj_ext *vec, unsigned int objects) 2081 { 2082 /* 2083 * If vector previously failed to allocate then we have live 2084 * objects with no tag reference. Mark all references in this 2085 * vector as empty to avoid warnings later on. 2086 */ 2087 if (obj_exts == OBJEXTS_ALLOC_FAIL) { 2088 unsigned int i; 2089 2090 for (i = 0; i < objects; i++) 2091 set_codetag_empty(&vec[i].ref); 2092 } 2093 } 2094 2095 #else /* CONFIG_MEM_ALLOC_PROFILING_DEBUG */ 2096 2097 static inline void mark_obj_codetag_empty(const void *obj) {} 2098 static inline bool mark_failed_objexts_alloc(struct slab *slab) { return false; } 2099 static inline void handle_failed_objexts_alloc(unsigned long obj_exts, 2100 struct slabobj_ext *vec, unsigned int objects) {} 2101 2102 #endif /* CONFIG_MEM_ALLOC_PROFILING_DEBUG */ 2103 2104 static inline void init_slab_obj_exts(struct slab *slab) 2105 { 2106 slab->obj_exts = 0; 2107 } 2108 2109 /* 2110 * Calculate the allocation size for slabobj_ext array. 2111 * 2112 * When memory allocation profiling is enabled, the obj_exts array 2113 * could be allocated from the same slab cache it's being allocated for. 2114 * This would prevent the slab from ever being freed because it would 2115 * always contain at least one allocated object (its own obj_exts array). 2116 * 2117 * To avoid this, increase the allocation size when we detect the array 2118 * may come from the same cache, forcing it to use a different cache. 2119 */ 2120 static inline size_t obj_exts_alloc_size(struct kmem_cache *s, 2121 struct slab *slab, gfp_t gfp) 2122 { 2123 size_t sz = sizeof(struct slabobj_ext) * slab->objects; 2124 struct kmem_cache *obj_exts_cache; 2125 2126 if (sz > KMALLOC_MAX_CACHE_SIZE) 2127 return sz; 2128 2129 if (!is_kmalloc_normal(s)) 2130 return sz; 2131 2132 obj_exts_cache = kmalloc_slab(sz, NULL, gfp, 0); 2133 /* 2134 * We can't simply compare s with obj_exts_cache, because random kmalloc 2135 * caches have multiple caches per size, selected by caller address. 2136 * Since caller address may differ between kmalloc_slab() and actual 2137 * allocation, bump size when sizes are equal. 2138 */ 2139 if (s->object_size == obj_exts_cache->object_size) 2140 return obj_exts_cache->object_size + 1; 2141 2142 return sz; 2143 } 2144 2145 int alloc_slab_obj_exts(struct slab *slab, struct kmem_cache *s, 2146 gfp_t gfp, bool new_slab) 2147 { 2148 bool allow_spin = gfpflags_allow_spinning(gfp); 2149 unsigned int objects = objs_per_slab(s, slab); 2150 unsigned long new_exts; 2151 unsigned long old_exts; 2152 struct slabobj_ext *vec; 2153 size_t sz; 2154 2155 gfp &= ~OBJCGS_CLEAR_MASK; 2156 /* Prevent recursive extension vector allocation */ 2157 gfp |= __GFP_NO_OBJ_EXT; 2158 2159 sz = obj_exts_alloc_size(s, slab, gfp); 2160 2161 /* 2162 * Note that allow_spin may be false during early boot and its 2163 * restricted GFP_BOOT_MASK. Due to kmalloc_nolock() only supporting 2164 * architectures with cmpxchg16b, early obj_exts will be missing for 2165 * very early allocations on those. 2166 */ 2167 if (unlikely(!allow_spin)) 2168 vec = kmalloc_nolock(sz, __GFP_ZERO | __GFP_NO_OBJ_EXT, 2169 slab_nid(slab)); 2170 else 2171 vec = kmalloc_node(sz, gfp | __GFP_ZERO, slab_nid(slab)); 2172 2173 if (!vec) { 2174 /* 2175 * Try to mark vectors which failed to allocate. 2176 * If this operation fails, there may be a racing process 2177 * that has already completed the allocation. 2178 */ 2179 if (!mark_failed_objexts_alloc(slab) && 2180 slab_obj_exts(slab)) 2181 return 0; 2182 2183 return -ENOMEM; 2184 } 2185 2186 VM_WARN_ON_ONCE(virt_to_slab(vec) != NULL && 2187 virt_to_slab(vec)->slab_cache == s); 2188 2189 new_exts = (unsigned long)vec; 2190 #ifdef CONFIG_MEMCG 2191 new_exts |= MEMCG_DATA_OBJEXTS; 2192 #endif 2193 retry: 2194 old_exts = READ_ONCE(slab->obj_exts); 2195 handle_failed_objexts_alloc(old_exts, vec, objects); 2196 2197 if (new_slab) { 2198 /* 2199 * If the slab is brand new and nobody can yet access its 2200 * obj_exts, no synchronization is required and obj_exts can 2201 * be simply assigned. 2202 */ 2203 slab->obj_exts = new_exts; 2204 } else if (old_exts & ~OBJEXTS_FLAGS_MASK) { 2205 /* 2206 * If the slab is already in use, somebody can allocate and 2207 * assign slabobj_exts in parallel. In this case the existing 2208 * objcg vector should be reused. 2209 */ 2210 mark_obj_codetag_empty(vec); 2211 if (unlikely(!allow_spin)) 2212 kfree_nolock(vec); 2213 else 2214 kfree(vec); 2215 return 0; 2216 } else if (cmpxchg(&slab->obj_exts, old_exts, new_exts) != old_exts) { 2217 /* Retry if a racing thread changed slab->obj_exts from under us. */ 2218 goto retry; 2219 } 2220 2221 if (allow_spin) 2222 kmemleak_not_leak(vec); 2223 return 0; 2224 } 2225 2226 static inline void free_slab_obj_exts(struct slab *slab, bool allow_spin) 2227 { 2228 struct slabobj_ext *obj_exts; 2229 2230 obj_exts = (struct slabobj_ext *)slab_obj_exts(slab); 2231 if (!obj_exts) { 2232 /* 2233 * If obj_exts allocation failed, slab->obj_exts is set to 2234 * OBJEXTS_ALLOC_FAIL. In this case, we end up here and should 2235 * clear the flag. 2236 */ 2237 slab->obj_exts = 0; 2238 return; 2239 } 2240 2241 if (obj_exts_in_slab(slab->slab_cache, slab)) { 2242 slab->obj_exts = 0; 2243 return; 2244 } 2245 2246 /* 2247 * obj_exts was created with __GFP_NO_OBJ_EXT flag, therefore its 2248 * corresponding extension will be NULL. alloc_tag_sub() will throw a 2249 * warning if slab has extensions but the extension of an object is 2250 * NULL, therefore replace NULL with CODETAG_EMPTY to indicate that 2251 * the extension for obj_exts is expected to be NULL. 2252 */ 2253 mark_obj_codetag_empty(obj_exts); 2254 if (allow_spin) 2255 kfree(obj_exts); 2256 else 2257 kfree_nolock(obj_exts); 2258 slab->obj_exts = 0; 2259 } 2260 2261 /* 2262 * Try to allocate slabobj_ext array from unused space. 2263 * This function must be called on a freshly allocated slab to prevent 2264 * concurrency problems. 2265 */ 2266 static void alloc_slab_obj_exts_early(struct kmem_cache *s, struct slab *slab) 2267 { 2268 void *addr; 2269 unsigned long obj_exts; 2270 2271 /* Initialize stride early to avoid memory ordering issues */ 2272 slab_set_stride(slab, sizeof(struct slabobj_ext)); 2273 2274 if (!need_slab_obj_exts(s)) 2275 return; 2276 2277 if (obj_exts_fit_within_slab_leftover(s, slab)) { 2278 addr = slab_address(slab) + obj_exts_offset_in_slab(s, slab); 2279 addr = kasan_reset_tag(addr); 2280 obj_exts = (unsigned long)addr; 2281 2282 get_slab_obj_exts(obj_exts); 2283 memset(addr, 0, obj_exts_size_in_slab(slab)); 2284 put_slab_obj_exts(obj_exts); 2285 2286 #ifdef CONFIG_MEMCG 2287 obj_exts |= MEMCG_DATA_OBJEXTS; 2288 #endif 2289 slab->obj_exts = obj_exts; 2290 } else if (s->flags & SLAB_OBJ_EXT_IN_OBJ) { 2291 unsigned int offset = obj_exts_offset_in_object(s); 2292 2293 obj_exts = (unsigned long)slab_address(slab); 2294 obj_exts += s->red_left_pad; 2295 obj_exts += offset; 2296 2297 get_slab_obj_exts(obj_exts); 2298 for_each_object(addr, s, slab_address(slab), slab->objects) 2299 memset(kasan_reset_tag(addr) + offset, 0, 2300 sizeof(struct slabobj_ext)); 2301 put_slab_obj_exts(obj_exts); 2302 2303 #ifdef CONFIG_MEMCG 2304 obj_exts |= MEMCG_DATA_OBJEXTS; 2305 #endif 2306 slab->obj_exts = obj_exts; 2307 slab_set_stride(slab, s->size); 2308 } 2309 } 2310 2311 #else /* CONFIG_SLAB_OBJ_EXT */ 2312 2313 static inline void mark_obj_codetag_empty(const void *obj) 2314 { 2315 } 2316 2317 static inline void init_slab_obj_exts(struct slab *slab) 2318 { 2319 } 2320 2321 static int alloc_slab_obj_exts(struct slab *slab, struct kmem_cache *s, 2322 gfp_t gfp, bool new_slab) 2323 { 2324 return 0; 2325 } 2326 2327 static inline void free_slab_obj_exts(struct slab *slab, bool allow_spin) 2328 { 2329 } 2330 2331 static inline void alloc_slab_obj_exts_early(struct kmem_cache *s, 2332 struct slab *slab) 2333 { 2334 } 2335 2336 #endif /* CONFIG_SLAB_OBJ_EXT */ 2337 2338 #ifdef CONFIG_MEM_ALLOC_PROFILING 2339 2340 static inline unsigned long 2341 prepare_slab_obj_exts_hook(struct kmem_cache *s, struct slab *slab, 2342 gfp_t flags, void *p) 2343 { 2344 if (!slab_obj_exts(slab) && 2345 alloc_slab_obj_exts(slab, s, flags, false)) { 2346 pr_warn_once("%s, %s: Failed to create slab extension vector!\n", 2347 __func__, s->name); 2348 return 0; 2349 } 2350 2351 return slab_obj_exts(slab); 2352 } 2353 2354 2355 /* Should be called only if mem_alloc_profiling_enabled() */ 2356 static noinline void 2357 __alloc_tagging_slab_alloc_hook(struct kmem_cache *s, void *object, gfp_t flags) 2358 { 2359 unsigned long obj_exts; 2360 struct slabobj_ext *obj_ext; 2361 struct slab *slab; 2362 2363 if (!object) 2364 return; 2365 2366 if (s->flags & (SLAB_NO_OBJ_EXT | SLAB_NOLEAKTRACE)) 2367 return; 2368 2369 if (flags & __GFP_NO_OBJ_EXT) 2370 return; 2371 2372 slab = virt_to_slab(object); 2373 obj_exts = prepare_slab_obj_exts_hook(s, slab, flags, object); 2374 /* 2375 * Currently obj_exts is used only for allocation profiling. 2376 * If other users appear then mem_alloc_profiling_enabled() 2377 * check should be added before alloc_tag_add(). 2378 */ 2379 if (obj_exts) { 2380 unsigned int obj_idx = obj_to_index(s, slab, object); 2381 2382 get_slab_obj_exts(obj_exts); 2383 obj_ext = slab_obj_ext(slab, obj_exts, obj_idx); 2384 alloc_tag_add(&obj_ext->ref, current->alloc_tag, s->size); 2385 put_slab_obj_exts(obj_exts); 2386 } else { 2387 alloc_tag_set_inaccurate(current->alloc_tag); 2388 } 2389 } 2390 2391 static inline void 2392 alloc_tagging_slab_alloc_hook(struct kmem_cache *s, void *object, gfp_t flags) 2393 { 2394 if (mem_alloc_profiling_enabled()) 2395 __alloc_tagging_slab_alloc_hook(s, object, flags); 2396 } 2397 2398 /* Should be called only if mem_alloc_profiling_enabled() */ 2399 static noinline void 2400 __alloc_tagging_slab_free_hook(struct kmem_cache *s, struct slab *slab, void **p, 2401 int objects) 2402 { 2403 int i; 2404 unsigned long obj_exts; 2405 2406 /* slab->obj_exts might not be NULL if it was created for MEMCG accounting. */ 2407 if (s->flags & (SLAB_NO_OBJ_EXT | SLAB_NOLEAKTRACE)) 2408 return; 2409 2410 obj_exts = slab_obj_exts(slab); 2411 if (!obj_exts) 2412 return; 2413 2414 get_slab_obj_exts(obj_exts); 2415 for (i = 0; i < objects; i++) { 2416 unsigned int off = obj_to_index(s, slab, p[i]); 2417 2418 alloc_tag_sub(&slab_obj_ext(slab, obj_exts, off)->ref, s->size); 2419 } 2420 put_slab_obj_exts(obj_exts); 2421 } 2422 2423 static inline void 2424 alloc_tagging_slab_free_hook(struct kmem_cache *s, struct slab *slab, void **p, 2425 int objects) 2426 { 2427 if (mem_alloc_profiling_enabled()) 2428 __alloc_tagging_slab_free_hook(s, slab, p, objects); 2429 } 2430 2431 #else /* CONFIG_MEM_ALLOC_PROFILING */ 2432 2433 static inline void 2434 alloc_tagging_slab_alloc_hook(struct kmem_cache *s, void *object, gfp_t flags) 2435 { 2436 } 2437 2438 static inline void 2439 alloc_tagging_slab_free_hook(struct kmem_cache *s, struct slab *slab, void **p, 2440 int objects) 2441 { 2442 } 2443 2444 #endif /* CONFIG_MEM_ALLOC_PROFILING */ 2445 2446 2447 #ifdef CONFIG_MEMCG 2448 2449 static void memcg_alloc_abort_single(struct kmem_cache *s, void *object); 2450 2451 static __fastpath_inline 2452 bool memcg_slab_post_alloc_hook(struct kmem_cache *s, struct list_lru *lru, 2453 gfp_t flags, size_t size, void **p) 2454 { 2455 if (likely(!memcg_kmem_online())) 2456 return true; 2457 2458 if (likely(!(flags & __GFP_ACCOUNT) && !(s->flags & SLAB_ACCOUNT))) 2459 return true; 2460 2461 if (likely(__memcg_slab_post_alloc_hook(s, lru, flags, size, p))) 2462 return true; 2463 2464 if (likely(size == 1)) { 2465 memcg_alloc_abort_single(s, *p); 2466 *p = NULL; 2467 } else { 2468 kmem_cache_free_bulk(s, size, p); 2469 } 2470 2471 return false; 2472 } 2473 2474 static __fastpath_inline 2475 void memcg_slab_free_hook(struct kmem_cache *s, struct slab *slab, void **p, 2476 int objects) 2477 { 2478 unsigned long obj_exts; 2479 2480 if (!memcg_kmem_online()) 2481 return; 2482 2483 obj_exts = slab_obj_exts(slab); 2484 if (likely(!obj_exts)) 2485 return; 2486 2487 get_slab_obj_exts(obj_exts); 2488 __memcg_slab_free_hook(s, slab, p, objects, obj_exts); 2489 put_slab_obj_exts(obj_exts); 2490 } 2491 2492 static __fastpath_inline 2493 bool memcg_slab_post_charge(void *p, gfp_t flags) 2494 { 2495 unsigned long obj_exts; 2496 struct slabobj_ext *obj_ext; 2497 struct kmem_cache *s; 2498 struct page *page; 2499 struct slab *slab; 2500 unsigned long off; 2501 2502 page = virt_to_page(p); 2503 if (PageLargeKmalloc(page)) { 2504 unsigned int order; 2505 int size; 2506 2507 if (PageMemcgKmem(page)) 2508 return true; 2509 2510 order = large_kmalloc_order(page); 2511 if (__memcg_kmem_charge_page(page, flags, order)) 2512 return false; 2513 2514 /* 2515 * This page has already been accounted in the global stats but 2516 * not in the memcg stats. So, subtract from the global and use 2517 * the interface which adds to both global and memcg stats. 2518 */ 2519 size = PAGE_SIZE << order; 2520 mod_node_page_state(page_pgdat(page), NR_SLAB_UNRECLAIMABLE_B, -size); 2521 mod_lruvec_page_state(page, NR_SLAB_UNRECLAIMABLE_B, size); 2522 return true; 2523 } 2524 2525 slab = page_slab(page); 2526 s = slab->slab_cache; 2527 2528 /* 2529 * Ignore KMALLOC_NORMAL cache to avoid possible circular dependency 2530 * of slab_obj_exts being allocated from the same slab and thus the slab 2531 * becoming effectively unfreeable. 2532 */ 2533 if (is_kmalloc_normal(s)) 2534 return true; 2535 2536 /* Ignore already charged objects. */ 2537 obj_exts = slab_obj_exts(slab); 2538 if (obj_exts) { 2539 get_slab_obj_exts(obj_exts); 2540 off = obj_to_index(s, slab, p); 2541 obj_ext = slab_obj_ext(slab, obj_exts, off); 2542 if (unlikely(obj_ext->objcg)) { 2543 put_slab_obj_exts(obj_exts); 2544 return true; 2545 } 2546 put_slab_obj_exts(obj_exts); 2547 } 2548 2549 return __memcg_slab_post_alloc_hook(s, NULL, flags, 1, &p); 2550 } 2551 2552 #else /* CONFIG_MEMCG */ 2553 static inline bool memcg_slab_post_alloc_hook(struct kmem_cache *s, 2554 struct list_lru *lru, 2555 gfp_t flags, size_t size, 2556 void **p) 2557 { 2558 return true; 2559 } 2560 2561 static inline void memcg_slab_free_hook(struct kmem_cache *s, struct slab *slab, 2562 void **p, int objects) 2563 { 2564 } 2565 2566 static inline bool memcg_slab_post_charge(void *p, gfp_t flags) 2567 { 2568 return true; 2569 } 2570 #endif /* CONFIG_MEMCG */ 2571 2572 #ifdef CONFIG_SLUB_RCU_DEBUG 2573 static void slab_free_after_rcu_debug(struct rcu_head *rcu_head); 2574 2575 struct rcu_delayed_free { 2576 struct rcu_head head; 2577 void *object; 2578 }; 2579 #endif 2580 2581 /* 2582 * Hooks for other subsystems that check memory allocations. In a typical 2583 * production configuration these hooks all should produce no code at all. 2584 * 2585 * Returns true if freeing of the object can proceed, false if its reuse 2586 * was delayed by CONFIG_SLUB_RCU_DEBUG or KASAN quarantine, or it was returned 2587 * to KFENCE. 2588 * 2589 * For objects allocated via kmalloc_nolock(), only a subset of alloc hooks 2590 * are invoked, so some free hooks must handle asymmetric hook calls. 2591 * 2592 * Alloc hooks called for kmalloc_nolock(): 2593 * - kmsan_slab_alloc() 2594 * - kasan_slab_alloc() 2595 * - memcg_slab_post_alloc_hook() 2596 * - alloc_tagging_slab_alloc_hook() 2597 * 2598 * Free hooks that must handle missing corresponding alloc hooks: 2599 * - kmemleak_free_recursive() 2600 * - kfence_free() 2601 * 2602 * Free hooks that have no alloc hook counterpart, and thus safe to call: 2603 * - debug_check_no_locks_freed() 2604 * - debug_check_no_obj_freed() 2605 * - __kcsan_check_access() 2606 */ 2607 static __always_inline 2608 bool slab_free_hook(struct kmem_cache *s, void *x, bool init, 2609 bool after_rcu_delay) 2610 { 2611 /* Are the object contents still accessible? */ 2612 bool still_accessible = (s->flags & SLAB_TYPESAFE_BY_RCU) && !after_rcu_delay; 2613 2614 kmemleak_free_recursive(x, s->flags); 2615 kmsan_slab_free(s, x); 2616 2617 debug_check_no_locks_freed(x, s->object_size); 2618 2619 if (!(s->flags & SLAB_DEBUG_OBJECTS)) 2620 debug_check_no_obj_freed(x, s->object_size); 2621 2622 /* Use KCSAN to help debug racy use-after-free. */ 2623 if (!still_accessible) 2624 __kcsan_check_access(x, s->object_size, 2625 KCSAN_ACCESS_WRITE | KCSAN_ACCESS_ASSERT); 2626 2627 if (kfence_free(x)) 2628 return false; 2629 2630 /* 2631 * Give KASAN a chance to notice an invalid free operation before we 2632 * modify the object. 2633 */ 2634 if (kasan_slab_pre_free(s, x)) 2635 return false; 2636 2637 #ifdef CONFIG_SLUB_RCU_DEBUG 2638 if (still_accessible) { 2639 struct rcu_delayed_free *delayed_free; 2640 2641 delayed_free = kmalloc_obj(*delayed_free, GFP_NOWAIT); 2642 if (delayed_free) { 2643 /* 2644 * Let KASAN track our call stack as a "related work 2645 * creation", just like if the object had been freed 2646 * normally via kfree_rcu(). 2647 * We have to do this manually because the rcu_head is 2648 * not located inside the object. 2649 */ 2650 kasan_record_aux_stack(x); 2651 2652 delayed_free->object = x; 2653 call_rcu(&delayed_free->head, slab_free_after_rcu_debug); 2654 return false; 2655 } 2656 } 2657 #endif /* CONFIG_SLUB_RCU_DEBUG */ 2658 2659 /* 2660 * As memory initialization might be integrated into KASAN, 2661 * kasan_slab_free and initialization memset's must be 2662 * kept together to avoid discrepancies in behavior. 2663 * 2664 * The initialization memset's clear the object and the metadata, 2665 * but don't touch the SLAB redzone. 2666 * 2667 * The object's freepointer is also avoided if stored outside the 2668 * object. 2669 */ 2670 if (unlikely(init)) { 2671 int rsize; 2672 unsigned int inuse, orig_size; 2673 2674 inuse = get_info_end(s); 2675 orig_size = get_orig_size(s, x); 2676 if (!kasan_has_integrated_init()) 2677 memset(kasan_reset_tag(x), 0, orig_size); 2678 rsize = (s->flags & SLAB_RED_ZONE) ? s->red_left_pad : 0; 2679 memset((char *)kasan_reset_tag(x) + inuse, 0, 2680 s->size - inuse - rsize); 2681 /* 2682 * Restore orig_size, otherwise kmalloc redzone overwritten 2683 * would be reported 2684 */ 2685 set_orig_size(s, x, orig_size); 2686 2687 } 2688 /* KASAN might put x into memory quarantine, delaying its reuse. */ 2689 return !kasan_slab_free(s, x, init, still_accessible, false); 2690 } 2691 2692 static __fastpath_inline 2693 bool slab_free_freelist_hook(struct kmem_cache *s, void **head, void **tail, 2694 int *cnt) 2695 { 2696 2697 void *object; 2698 void *next = *head; 2699 void *old_tail = *tail; 2700 bool init; 2701 2702 if (is_kfence_address(next)) { 2703 slab_free_hook(s, next, false, false); 2704 return false; 2705 } 2706 2707 /* Head and tail of the reconstructed freelist */ 2708 *head = NULL; 2709 *tail = NULL; 2710 2711 init = slab_want_init_on_free(s); 2712 2713 do { 2714 object = next; 2715 next = get_freepointer(s, object); 2716 2717 /* If object's reuse doesn't have to be delayed */ 2718 if (likely(slab_free_hook(s, object, init, false))) { 2719 /* Move object to the new freelist */ 2720 set_freepointer(s, object, *head); 2721 *head = object; 2722 if (!*tail) 2723 *tail = object; 2724 } else { 2725 /* 2726 * Adjust the reconstructed freelist depth 2727 * accordingly if object's reuse is delayed. 2728 */ 2729 --(*cnt); 2730 } 2731 } while (object != old_tail); 2732 2733 return *head != NULL; 2734 } 2735 2736 static void *setup_object(struct kmem_cache *s, void *object) 2737 { 2738 setup_object_debug(s, object); 2739 object = kasan_init_slab_obj(s, object); 2740 if (unlikely(s->ctor)) { 2741 kasan_unpoison_new_object(s, object); 2742 s->ctor(object); 2743 kasan_poison_new_object(s, object); 2744 } 2745 return object; 2746 } 2747 2748 static struct slab_sheaf *__alloc_empty_sheaf(struct kmem_cache *s, gfp_t gfp, 2749 unsigned int capacity) 2750 { 2751 struct slab_sheaf *sheaf; 2752 size_t sheaf_size; 2753 2754 if (gfp & __GFP_NO_OBJ_EXT) 2755 return NULL; 2756 2757 gfp &= ~OBJCGS_CLEAR_MASK; 2758 2759 /* 2760 * Prevent recursion to the same cache, or a deep stack of kmallocs of 2761 * varying sizes (sheaf capacity might differ for each kmalloc size 2762 * bucket) 2763 */ 2764 if (s->flags & SLAB_KMALLOC) 2765 gfp |= __GFP_NO_OBJ_EXT; 2766 2767 sheaf_size = struct_size(sheaf, objects, capacity); 2768 sheaf = kzalloc(sheaf_size, gfp); 2769 2770 if (unlikely(!sheaf)) 2771 return NULL; 2772 2773 sheaf->cache = s; 2774 2775 stat(s, SHEAF_ALLOC); 2776 2777 return sheaf; 2778 } 2779 2780 static inline struct slab_sheaf *alloc_empty_sheaf(struct kmem_cache *s, 2781 gfp_t gfp) 2782 { 2783 return __alloc_empty_sheaf(s, gfp, s->sheaf_capacity); 2784 } 2785 2786 static void free_empty_sheaf(struct kmem_cache *s, struct slab_sheaf *sheaf) 2787 { 2788 /* 2789 * If the sheaf was created with __GFP_NO_OBJ_EXT flag then its 2790 * corresponding extension is NULL and alloc_tag_sub() will throw a 2791 * warning, therefore replace NULL with CODETAG_EMPTY to indicate 2792 * that the extension for this sheaf is expected to be NULL. 2793 */ 2794 if (s->flags & SLAB_KMALLOC) 2795 mark_obj_codetag_empty(sheaf); 2796 2797 VM_WARN_ON_ONCE(sheaf->size > 0); 2798 kfree(sheaf); 2799 2800 stat(s, SHEAF_FREE); 2801 } 2802 2803 static unsigned int 2804 refill_objects(struct kmem_cache *s, void **p, gfp_t gfp, unsigned int min, 2805 unsigned int max); 2806 2807 static int refill_sheaf(struct kmem_cache *s, struct slab_sheaf *sheaf, 2808 gfp_t gfp) 2809 { 2810 int to_fill = s->sheaf_capacity - sheaf->size; 2811 int filled; 2812 2813 if (!to_fill) 2814 return 0; 2815 2816 filled = refill_objects(s, &sheaf->objects[sheaf->size], gfp, to_fill, 2817 to_fill); 2818 2819 sheaf->size += filled; 2820 2821 stat_add(s, SHEAF_REFILL, filled); 2822 2823 if (filled < to_fill) 2824 return -ENOMEM; 2825 2826 return 0; 2827 } 2828 2829 /* 2830 * Maximum number of objects freed during a single flush of main pcs sheaf. 2831 * Translates directly to an on-stack array size. 2832 */ 2833 #define PCS_BATCH_MAX 32U 2834 2835 static void __kmem_cache_free_bulk(struct kmem_cache *s, size_t size, void **p); 2836 2837 /* 2838 * Free all objects from the main sheaf. In order to perform 2839 * __kmem_cache_free_bulk() outside of cpu_sheaves->lock, work in batches where 2840 * object pointers are moved to a on-stack array under the lock. To bound the 2841 * stack usage, limit each batch to PCS_BATCH_MAX. 2842 * 2843 * Must be called with s->cpu_sheaves->lock locked, returns with the lock 2844 * unlocked. 2845 * 2846 * Returns how many objects are remaining to be flushed 2847 */ 2848 static unsigned int __sheaf_flush_main_batch(struct kmem_cache *s) 2849 { 2850 struct slub_percpu_sheaves *pcs; 2851 unsigned int batch, remaining; 2852 void *objects[PCS_BATCH_MAX]; 2853 struct slab_sheaf *sheaf; 2854 2855 lockdep_assert_held(this_cpu_ptr(&s->cpu_sheaves->lock)); 2856 2857 pcs = this_cpu_ptr(s->cpu_sheaves); 2858 sheaf = pcs->main; 2859 2860 batch = min(PCS_BATCH_MAX, sheaf->size); 2861 2862 sheaf->size -= batch; 2863 memcpy(objects, sheaf->objects + sheaf->size, batch * sizeof(void *)); 2864 2865 remaining = sheaf->size; 2866 2867 local_unlock(&s->cpu_sheaves->lock); 2868 2869 __kmem_cache_free_bulk(s, batch, &objects[0]); 2870 2871 stat_add(s, SHEAF_FLUSH, batch); 2872 2873 return remaining; 2874 } 2875 2876 static void sheaf_flush_main(struct kmem_cache *s) 2877 { 2878 unsigned int remaining; 2879 2880 do { 2881 local_lock(&s->cpu_sheaves->lock); 2882 2883 remaining = __sheaf_flush_main_batch(s); 2884 2885 } while (remaining); 2886 } 2887 2888 /* 2889 * Returns true if the main sheaf was at least partially flushed. 2890 */ 2891 static bool sheaf_try_flush_main(struct kmem_cache *s) 2892 { 2893 unsigned int remaining; 2894 bool ret = false; 2895 2896 do { 2897 if (!local_trylock(&s->cpu_sheaves->lock)) 2898 return ret; 2899 2900 ret = true; 2901 remaining = __sheaf_flush_main_batch(s); 2902 2903 } while (remaining); 2904 2905 return ret; 2906 } 2907 2908 /* 2909 * Free all objects from a sheaf that's unused, i.e. not linked to any 2910 * cpu_sheaves, so we need no locking and batching. The locking is also not 2911 * necessary when flushing cpu's sheaves (both spare and main) during cpu 2912 * hotremove as the cpu is not executing anymore. 2913 */ 2914 static void sheaf_flush_unused(struct kmem_cache *s, struct slab_sheaf *sheaf) 2915 { 2916 if (!sheaf->size) 2917 return; 2918 2919 stat_add(s, SHEAF_FLUSH, sheaf->size); 2920 2921 __kmem_cache_free_bulk(s, sheaf->size, &sheaf->objects[0]); 2922 2923 sheaf->size = 0; 2924 } 2925 2926 static bool __rcu_free_sheaf_prepare(struct kmem_cache *s, 2927 struct slab_sheaf *sheaf) 2928 { 2929 bool init = slab_want_init_on_free(s); 2930 void **p = &sheaf->objects[0]; 2931 unsigned int i = 0; 2932 bool pfmemalloc = false; 2933 2934 while (i < sheaf->size) { 2935 struct slab *slab = virt_to_slab(p[i]); 2936 2937 memcg_slab_free_hook(s, slab, p + i, 1); 2938 alloc_tagging_slab_free_hook(s, slab, p + i, 1); 2939 2940 if (unlikely(!slab_free_hook(s, p[i], init, true))) { 2941 p[i] = p[--sheaf->size]; 2942 continue; 2943 } 2944 2945 if (slab_test_pfmemalloc(slab)) 2946 pfmemalloc = true; 2947 2948 i++; 2949 } 2950 2951 return pfmemalloc; 2952 } 2953 2954 static void rcu_free_sheaf_nobarn(struct rcu_head *head) 2955 { 2956 struct slab_sheaf *sheaf; 2957 struct kmem_cache *s; 2958 2959 sheaf = container_of(head, struct slab_sheaf, rcu_head); 2960 s = sheaf->cache; 2961 2962 __rcu_free_sheaf_prepare(s, sheaf); 2963 2964 sheaf_flush_unused(s, sheaf); 2965 2966 free_empty_sheaf(s, sheaf); 2967 } 2968 2969 /* 2970 * Caller needs to make sure migration is disabled in order to fully flush 2971 * single cpu's sheaves 2972 * 2973 * must not be called from an irq 2974 * 2975 * flushing operations are rare so let's keep it simple and flush to slabs 2976 * directly, skipping the barn 2977 */ 2978 static void pcs_flush_all(struct kmem_cache *s) 2979 { 2980 struct slub_percpu_sheaves *pcs; 2981 struct slab_sheaf *spare, *rcu_free; 2982 2983 local_lock(&s->cpu_sheaves->lock); 2984 pcs = this_cpu_ptr(s->cpu_sheaves); 2985 2986 spare = pcs->spare; 2987 pcs->spare = NULL; 2988 2989 rcu_free = pcs->rcu_free; 2990 pcs->rcu_free = NULL; 2991 2992 local_unlock(&s->cpu_sheaves->lock); 2993 2994 if (spare) { 2995 sheaf_flush_unused(s, spare); 2996 free_empty_sheaf(s, spare); 2997 } 2998 2999 if (rcu_free) 3000 call_rcu(&rcu_free->rcu_head, rcu_free_sheaf_nobarn); 3001 3002 sheaf_flush_main(s); 3003 } 3004 3005 static void __pcs_flush_all_cpu(struct kmem_cache *s, unsigned int cpu) 3006 { 3007 struct slub_percpu_sheaves *pcs; 3008 3009 pcs = per_cpu_ptr(s->cpu_sheaves, cpu); 3010 3011 /* The cpu is not executing anymore so we don't need pcs->lock */ 3012 sheaf_flush_unused(s, pcs->main); 3013 if (pcs->spare) { 3014 sheaf_flush_unused(s, pcs->spare); 3015 free_empty_sheaf(s, pcs->spare); 3016 pcs->spare = NULL; 3017 } 3018 3019 if (pcs->rcu_free) { 3020 call_rcu(&pcs->rcu_free->rcu_head, rcu_free_sheaf_nobarn); 3021 pcs->rcu_free = NULL; 3022 } 3023 } 3024 3025 static void pcs_destroy(struct kmem_cache *s) 3026 { 3027 int cpu; 3028 3029 /* 3030 * We may be unwinding cache creation that failed before or during the 3031 * allocation of this. 3032 */ 3033 if (!s->cpu_sheaves) 3034 return; 3035 3036 /* pcs->main can only point to the bootstrap sheaf, nothing to free */ 3037 if (!cache_has_sheaves(s)) 3038 goto free_pcs; 3039 3040 for_each_possible_cpu(cpu) { 3041 struct slub_percpu_sheaves *pcs; 3042 3043 pcs = per_cpu_ptr(s->cpu_sheaves, cpu); 3044 3045 /* This can happen when unwinding failed cache creation. */ 3046 if (!pcs->main) 3047 continue; 3048 3049 /* 3050 * We have already passed __kmem_cache_shutdown() so everything 3051 * was flushed and there should be no objects allocated from 3052 * slabs, otherwise kmem_cache_destroy() would have aborted. 3053 * Therefore something would have to be really wrong if the 3054 * warnings here trigger, and we should rather leave objects and 3055 * sheaves to leak in that case. 3056 */ 3057 3058 WARN_ON(pcs->spare); 3059 WARN_ON(pcs->rcu_free); 3060 3061 if (!WARN_ON(pcs->main->size)) { 3062 free_empty_sheaf(s, pcs->main); 3063 pcs->main = NULL; 3064 } 3065 } 3066 3067 free_pcs: 3068 free_percpu(s->cpu_sheaves); 3069 s->cpu_sheaves = NULL; 3070 } 3071 3072 static struct slab_sheaf *barn_get_empty_sheaf(struct node_barn *barn, 3073 bool allow_spin) 3074 { 3075 struct slab_sheaf *empty = NULL; 3076 unsigned long flags; 3077 3078 if (!data_race(barn->nr_empty)) 3079 return NULL; 3080 3081 if (likely(allow_spin)) 3082 spin_lock_irqsave(&barn->lock, flags); 3083 else if (!spin_trylock_irqsave(&barn->lock, flags)) 3084 return NULL; 3085 3086 if (likely(barn->nr_empty)) { 3087 empty = list_first_entry(&barn->sheaves_empty, 3088 struct slab_sheaf, barn_list); 3089 list_del(&empty->barn_list); 3090 barn->nr_empty--; 3091 } 3092 3093 spin_unlock_irqrestore(&barn->lock, flags); 3094 3095 return empty; 3096 } 3097 3098 /* 3099 * The following two functions are used mainly in cases where we have to undo an 3100 * intended action due to a race or cpu migration. Thus they do not check the 3101 * empty or full sheaf limits for simplicity. 3102 */ 3103 3104 static void barn_put_empty_sheaf(struct node_barn *barn, struct slab_sheaf *sheaf) 3105 { 3106 unsigned long flags; 3107 3108 spin_lock_irqsave(&barn->lock, flags); 3109 3110 list_add(&sheaf->barn_list, &barn->sheaves_empty); 3111 barn->nr_empty++; 3112 3113 spin_unlock_irqrestore(&barn->lock, flags); 3114 } 3115 3116 static void barn_put_full_sheaf(struct node_barn *barn, struct slab_sheaf *sheaf) 3117 { 3118 unsigned long flags; 3119 3120 spin_lock_irqsave(&barn->lock, flags); 3121 3122 list_add(&sheaf->barn_list, &barn->sheaves_full); 3123 barn->nr_full++; 3124 3125 spin_unlock_irqrestore(&barn->lock, flags); 3126 } 3127 3128 static struct slab_sheaf *barn_get_full_or_empty_sheaf(struct node_barn *barn) 3129 { 3130 struct slab_sheaf *sheaf = NULL; 3131 unsigned long flags; 3132 3133 if (!data_race(barn->nr_full) && !data_race(barn->nr_empty)) 3134 return NULL; 3135 3136 spin_lock_irqsave(&barn->lock, flags); 3137 3138 if (barn->nr_full) { 3139 sheaf = list_first_entry(&barn->sheaves_full, struct slab_sheaf, 3140 barn_list); 3141 list_del(&sheaf->barn_list); 3142 barn->nr_full--; 3143 } else if (barn->nr_empty) { 3144 sheaf = list_first_entry(&barn->sheaves_empty, 3145 struct slab_sheaf, barn_list); 3146 list_del(&sheaf->barn_list); 3147 barn->nr_empty--; 3148 } 3149 3150 spin_unlock_irqrestore(&barn->lock, flags); 3151 3152 return sheaf; 3153 } 3154 3155 /* 3156 * If a full sheaf is available, return it and put the supplied empty one to 3157 * barn. We ignore the limit on empty sheaves as the number of sheaves doesn't 3158 * change. 3159 */ 3160 static struct slab_sheaf * 3161 barn_replace_empty_sheaf(struct node_barn *barn, struct slab_sheaf *empty, 3162 bool allow_spin) 3163 { 3164 struct slab_sheaf *full = NULL; 3165 unsigned long flags; 3166 3167 if (!data_race(barn->nr_full)) 3168 return NULL; 3169 3170 if (likely(allow_spin)) 3171 spin_lock_irqsave(&barn->lock, flags); 3172 else if (!spin_trylock_irqsave(&barn->lock, flags)) 3173 return NULL; 3174 3175 if (likely(barn->nr_full)) { 3176 full = list_first_entry(&barn->sheaves_full, struct slab_sheaf, 3177 barn_list); 3178 list_del(&full->barn_list); 3179 list_add(&empty->barn_list, &barn->sheaves_empty); 3180 barn->nr_full--; 3181 barn->nr_empty++; 3182 } 3183 3184 spin_unlock_irqrestore(&barn->lock, flags); 3185 3186 return full; 3187 } 3188 3189 /* 3190 * If an empty sheaf is available, return it and put the supplied full one to 3191 * barn. But if there are too many full sheaves, reject this with -E2BIG. 3192 */ 3193 static struct slab_sheaf * 3194 barn_replace_full_sheaf(struct node_barn *barn, struct slab_sheaf *full, 3195 bool allow_spin) 3196 { 3197 struct slab_sheaf *empty; 3198 unsigned long flags; 3199 3200 /* we don't repeat this check under barn->lock as it's not critical */ 3201 if (data_race(barn->nr_full) >= MAX_FULL_SHEAVES) 3202 return ERR_PTR(-E2BIG); 3203 if (!data_race(barn->nr_empty)) 3204 return ERR_PTR(-ENOMEM); 3205 3206 if (likely(allow_spin)) 3207 spin_lock_irqsave(&barn->lock, flags); 3208 else if (!spin_trylock_irqsave(&barn->lock, flags)) 3209 return ERR_PTR(-EBUSY); 3210 3211 if (likely(barn->nr_empty)) { 3212 empty = list_first_entry(&barn->sheaves_empty, struct slab_sheaf, 3213 barn_list); 3214 list_del(&empty->barn_list); 3215 list_add(&full->barn_list, &barn->sheaves_full); 3216 barn->nr_empty--; 3217 barn->nr_full++; 3218 } else { 3219 empty = ERR_PTR(-ENOMEM); 3220 } 3221 3222 spin_unlock_irqrestore(&barn->lock, flags); 3223 3224 return empty; 3225 } 3226 3227 static void barn_init(struct node_barn *barn) 3228 { 3229 spin_lock_init(&barn->lock); 3230 INIT_LIST_HEAD(&barn->sheaves_full); 3231 INIT_LIST_HEAD(&barn->sheaves_empty); 3232 barn->nr_full = 0; 3233 barn->nr_empty = 0; 3234 } 3235 3236 static void barn_shrink(struct kmem_cache *s, struct node_barn *barn) 3237 { 3238 LIST_HEAD(empty_list); 3239 LIST_HEAD(full_list); 3240 struct slab_sheaf *sheaf, *sheaf2; 3241 unsigned long flags; 3242 3243 spin_lock_irqsave(&barn->lock, flags); 3244 3245 list_splice_init(&barn->sheaves_full, &full_list); 3246 barn->nr_full = 0; 3247 list_splice_init(&barn->sheaves_empty, &empty_list); 3248 barn->nr_empty = 0; 3249 3250 spin_unlock_irqrestore(&barn->lock, flags); 3251 3252 list_for_each_entry_safe(sheaf, sheaf2, &full_list, barn_list) { 3253 sheaf_flush_unused(s, sheaf); 3254 free_empty_sheaf(s, sheaf); 3255 } 3256 3257 list_for_each_entry_safe(sheaf, sheaf2, &empty_list, barn_list) 3258 free_empty_sheaf(s, sheaf); 3259 } 3260 3261 /* 3262 * Slab allocation and freeing 3263 */ 3264 static inline struct slab *alloc_slab_page(gfp_t flags, int node, 3265 struct kmem_cache_order_objects oo, 3266 bool allow_spin) 3267 { 3268 struct page *page; 3269 struct slab *slab; 3270 unsigned int order = oo_order(oo); 3271 3272 if (unlikely(!allow_spin)) 3273 page = alloc_frozen_pages_nolock(0/* __GFP_COMP is implied */, 3274 node, order); 3275 else if (node == NUMA_NO_NODE) 3276 page = alloc_frozen_pages(flags, order); 3277 else 3278 page = __alloc_frozen_pages(flags, order, node, NULL); 3279 3280 if (!page) 3281 return NULL; 3282 3283 __SetPageSlab(page); 3284 slab = page_slab(page); 3285 if (page_is_pfmemalloc(page)) 3286 slab_set_pfmemalloc(slab); 3287 3288 return slab; 3289 } 3290 3291 #ifdef CONFIG_SLAB_FREELIST_RANDOM 3292 /* Pre-initialize the random sequence cache */ 3293 static int init_cache_random_seq(struct kmem_cache *s) 3294 { 3295 unsigned int count = oo_objects(s->oo); 3296 int err; 3297 3298 /* Bailout if already initialised */ 3299 if (s->random_seq) 3300 return 0; 3301 3302 err = cache_random_seq_create(s, count, GFP_KERNEL); 3303 if (err) { 3304 pr_err("SLUB: Unable to initialize free list for %s\n", 3305 s->name); 3306 return err; 3307 } 3308 3309 /* Transform to an offset on the set of pages */ 3310 if (s->random_seq) { 3311 unsigned int i; 3312 3313 for (i = 0; i < count; i++) 3314 s->random_seq[i] *= s->size; 3315 } 3316 return 0; 3317 } 3318 3319 /* Initialize each random sequence freelist per cache */ 3320 static void __init init_freelist_randomization(void) 3321 { 3322 struct kmem_cache *s; 3323 3324 mutex_lock(&slab_mutex); 3325 3326 list_for_each_entry(s, &slab_caches, list) 3327 init_cache_random_seq(s); 3328 3329 mutex_unlock(&slab_mutex); 3330 } 3331 3332 /* Get the next entry on the pre-computed freelist randomized */ 3333 static void *next_freelist_entry(struct kmem_cache *s, 3334 unsigned long *pos, void *start, 3335 unsigned long page_limit, 3336 unsigned long freelist_count) 3337 { 3338 unsigned int idx; 3339 3340 /* 3341 * If the target page allocation failed, the number of objects on the 3342 * page might be smaller than the usual size defined by the cache. 3343 */ 3344 do { 3345 idx = s->random_seq[*pos]; 3346 *pos += 1; 3347 if (*pos >= freelist_count) 3348 *pos = 0; 3349 } while (unlikely(idx >= page_limit)); 3350 3351 return (char *)start + idx; 3352 } 3353 3354 static DEFINE_PER_CPU(struct rnd_state, slab_rnd_state); 3355 3356 /* Shuffle the single linked freelist based on a random pre-computed sequence */ 3357 static bool shuffle_freelist(struct kmem_cache *s, struct slab *slab, 3358 bool allow_spin) 3359 { 3360 void *start; 3361 void *cur; 3362 void *next; 3363 unsigned long idx, pos, page_limit, freelist_count; 3364 3365 if (slab->objects < 2 || !s->random_seq) 3366 return false; 3367 3368 freelist_count = oo_objects(s->oo); 3369 if (allow_spin) { 3370 pos = get_random_u32_below(freelist_count); 3371 } else { 3372 struct rnd_state *state; 3373 3374 /* 3375 * An interrupt or NMI handler might interrupt and change 3376 * the state in the middle, but that's safe. 3377 */ 3378 state = &get_cpu_var(slab_rnd_state); 3379 pos = prandom_u32_state(state) % freelist_count; 3380 put_cpu_var(slab_rnd_state); 3381 } 3382 3383 page_limit = slab->objects * s->size; 3384 start = fixup_red_left(s, slab_address(slab)); 3385 3386 /* First entry is used as the base of the freelist */ 3387 cur = next_freelist_entry(s, &pos, start, page_limit, freelist_count); 3388 cur = setup_object(s, cur); 3389 slab->freelist = cur; 3390 3391 for (idx = 1; idx < slab->objects; idx++) { 3392 next = next_freelist_entry(s, &pos, start, page_limit, 3393 freelist_count); 3394 next = setup_object(s, next); 3395 set_freepointer(s, cur, next); 3396 cur = next; 3397 } 3398 set_freepointer(s, cur, NULL); 3399 3400 return true; 3401 } 3402 #else 3403 static inline int init_cache_random_seq(struct kmem_cache *s) 3404 { 3405 return 0; 3406 } 3407 static inline void init_freelist_randomization(void) { } 3408 static inline bool shuffle_freelist(struct kmem_cache *s, struct slab *slab, 3409 bool allow_spin) 3410 { 3411 return false; 3412 } 3413 #endif /* CONFIG_SLAB_FREELIST_RANDOM */ 3414 3415 static __always_inline void account_slab(struct slab *slab, int order, 3416 struct kmem_cache *s, gfp_t gfp) 3417 { 3418 if (memcg_kmem_online() && 3419 (s->flags & SLAB_ACCOUNT) && 3420 !slab_obj_exts(slab)) 3421 alloc_slab_obj_exts(slab, s, gfp, true); 3422 3423 mod_node_page_state(slab_pgdat(slab), cache_vmstat_idx(s), 3424 PAGE_SIZE << order); 3425 } 3426 3427 static __always_inline void unaccount_slab(struct slab *slab, int order, 3428 struct kmem_cache *s, bool allow_spin) 3429 { 3430 /* 3431 * The slab object extensions should now be freed regardless of 3432 * whether mem_alloc_profiling_enabled() or not because profiling 3433 * might have been disabled after slab->obj_exts got allocated. 3434 */ 3435 free_slab_obj_exts(slab, allow_spin); 3436 3437 mod_node_page_state(slab_pgdat(slab), cache_vmstat_idx(s), 3438 -(PAGE_SIZE << order)); 3439 } 3440 3441 static struct slab *allocate_slab(struct kmem_cache *s, gfp_t flags, int node) 3442 { 3443 bool allow_spin = gfpflags_allow_spinning(flags); 3444 struct slab *slab; 3445 struct kmem_cache_order_objects oo = s->oo; 3446 gfp_t alloc_gfp; 3447 void *start, *p, *next; 3448 int idx; 3449 bool shuffle; 3450 3451 flags &= gfp_allowed_mask; 3452 3453 flags |= s->allocflags; 3454 3455 /* 3456 * Let the initial higher-order allocation fail under memory pressure 3457 * so we fall-back to the minimum order allocation. 3458 */ 3459 alloc_gfp = (flags | __GFP_NOWARN | __GFP_NORETRY) & ~__GFP_NOFAIL; 3460 if ((alloc_gfp & __GFP_DIRECT_RECLAIM) && oo_order(oo) > oo_order(s->min)) 3461 alloc_gfp = (alloc_gfp | __GFP_NOMEMALLOC) & ~__GFP_RECLAIM; 3462 3463 /* 3464 * __GFP_RECLAIM could be cleared on the first allocation attempt, 3465 * so pass allow_spin flag directly. 3466 */ 3467 slab = alloc_slab_page(alloc_gfp, node, oo, allow_spin); 3468 if (unlikely(!slab)) { 3469 oo = s->min; 3470 alloc_gfp = flags; 3471 /* 3472 * Allocation may have failed due to fragmentation. 3473 * Try a lower order alloc if possible 3474 */ 3475 slab = alloc_slab_page(alloc_gfp, node, oo, allow_spin); 3476 if (unlikely(!slab)) 3477 return NULL; 3478 stat(s, ORDER_FALLBACK); 3479 } 3480 3481 slab->objects = oo_objects(oo); 3482 slab->inuse = 0; 3483 slab->frozen = 0; 3484 3485 slab->slab_cache = s; 3486 3487 kasan_poison_slab(slab); 3488 3489 start = slab_address(slab); 3490 3491 setup_slab_debug(s, slab, start); 3492 init_slab_obj_exts(slab); 3493 /* 3494 * Poison the slab before initializing the slabobj_ext array 3495 * to prevent the array from being overwritten. 3496 */ 3497 alloc_slab_obj_exts_early(s, slab); 3498 account_slab(slab, oo_order(oo), s, flags); 3499 3500 shuffle = shuffle_freelist(s, slab, allow_spin); 3501 3502 if (!shuffle) { 3503 start = fixup_red_left(s, start); 3504 start = setup_object(s, start); 3505 slab->freelist = start; 3506 for (idx = 0, p = start; idx < slab->objects - 1; idx++) { 3507 next = p + s->size; 3508 next = setup_object(s, next); 3509 set_freepointer(s, p, next); 3510 p = next; 3511 } 3512 set_freepointer(s, p, NULL); 3513 } 3514 3515 return slab; 3516 } 3517 3518 static struct slab *new_slab(struct kmem_cache *s, gfp_t flags, int node) 3519 { 3520 if (unlikely(flags & GFP_SLAB_BUG_MASK)) 3521 flags = kmalloc_fix_flags(flags); 3522 3523 WARN_ON_ONCE(s->ctor && (flags & __GFP_ZERO)); 3524 3525 return allocate_slab(s, 3526 flags & (GFP_RECLAIM_MASK | GFP_CONSTRAINT_MASK), node); 3527 } 3528 3529 static void __free_slab(struct kmem_cache *s, struct slab *slab, bool allow_spin) 3530 { 3531 struct page *page = slab_page(slab); 3532 int order = compound_order(page); 3533 int pages = 1 << order; 3534 3535 __slab_clear_pfmemalloc(slab); 3536 page->mapping = NULL; 3537 __ClearPageSlab(page); 3538 mm_account_reclaimed_pages(pages); 3539 unaccount_slab(slab, order, s, allow_spin); 3540 if (allow_spin) 3541 free_frozen_pages(page, order); 3542 else 3543 free_frozen_pages_nolock(page, order); 3544 } 3545 3546 static void free_new_slab_nolock(struct kmem_cache *s, struct slab *slab) 3547 { 3548 /* 3549 * Since it was just allocated, we can skip the actions in 3550 * discard_slab() and free_slab(). 3551 */ 3552 __free_slab(s, slab, false); 3553 } 3554 3555 static void rcu_free_slab(struct rcu_head *h) 3556 { 3557 struct slab *slab = container_of(h, struct slab, rcu_head); 3558 3559 __free_slab(slab->slab_cache, slab, true); 3560 } 3561 3562 static void free_slab(struct kmem_cache *s, struct slab *slab) 3563 { 3564 if (kmem_cache_debug_flags(s, SLAB_CONSISTENCY_CHECKS)) { 3565 void *p; 3566 3567 slab_pad_check(s, slab); 3568 for_each_object(p, s, slab_address(slab), slab->objects) 3569 check_object(s, slab, p, SLUB_RED_INACTIVE); 3570 } 3571 3572 if (unlikely(s->flags & SLAB_TYPESAFE_BY_RCU)) 3573 call_rcu(&slab->rcu_head, rcu_free_slab); 3574 else 3575 __free_slab(s, slab, true); 3576 } 3577 3578 static void discard_slab(struct kmem_cache *s, struct slab *slab) 3579 { 3580 dec_slabs_node(s, slab_nid(slab), slab->objects); 3581 free_slab(s, slab); 3582 } 3583 3584 static inline bool slab_test_node_partial(const struct slab *slab) 3585 { 3586 return test_bit(SL_partial, &slab->flags.f); 3587 } 3588 3589 static inline void slab_set_node_partial(struct slab *slab) 3590 { 3591 set_bit(SL_partial, &slab->flags.f); 3592 } 3593 3594 static inline void slab_clear_node_partial(struct slab *slab) 3595 { 3596 clear_bit(SL_partial, &slab->flags.f); 3597 } 3598 3599 /* 3600 * Management of partially allocated slabs. 3601 */ 3602 static inline void 3603 __add_partial(struct kmem_cache_node *n, struct slab *slab, enum add_mode mode) 3604 { 3605 n->nr_partial++; 3606 if (mode == ADD_TO_TAIL) 3607 list_add_tail(&slab->slab_list, &n->partial); 3608 else 3609 list_add(&slab->slab_list, &n->partial); 3610 slab_set_node_partial(slab); 3611 } 3612 3613 static inline void add_partial(struct kmem_cache_node *n, 3614 struct slab *slab, enum add_mode mode) 3615 { 3616 lockdep_assert_held(&n->list_lock); 3617 __add_partial(n, slab, mode); 3618 } 3619 3620 static inline void remove_partial(struct kmem_cache_node *n, 3621 struct slab *slab) 3622 { 3623 lockdep_assert_held(&n->list_lock); 3624 list_del(&slab->slab_list); 3625 slab_clear_node_partial(slab); 3626 n->nr_partial--; 3627 } 3628 3629 /* 3630 * Called only for kmem_cache_debug() caches instead of remove_partial(), with a 3631 * slab from the n->partial list. Remove only a single object from the slab, do 3632 * the alloc_debug_processing() checks and leave the slab on the list, or move 3633 * it to full list if it was the last free object. 3634 */ 3635 static void *alloc_single_from_partial(struct kmem_cache *s, 3636 struct kmem_cache_node *n, struct slab *slab, int orig_size) 3637 { 3638 void *object; 3639 3640 lockdep_assert_held(&n->list_lock); 3641 3642 #ifdef CONFIG_SLUB_DEBUG 3643 if (s->flags & SLAB_CONSISTENCY_CHECKS) { 3644 if (!validate_slab_ptr(slab)) { 3645 slab_err(s, slab, "Not a valid slab page"); 3646 return NULL; 3647 } 3648 } 3649 #endif 3650 3651 object = slab->freelist; 3652 slab->freelist = get_freepointer(s, object); 3653 slab->inuse++; 3654 3655 if (!alloc_debug_processing(s, slab, object, orig_size)) { 3656 remove_partial(n, slab); 3657 return NULL; 3658 } 3659 3660 if (slab->inuse == slab->objects) { 3661 remove_partial(n, slab); 3662 add_full(s, n, slab); 3663 } 3664 3665 return object; 3666 } 3667 3668 /* 3669 * Called only for kmem_cache_debug() caches to allocate from a freshly 3670 * allocated slab. Allocate a single object instead of whole freelist 3671 * and put the slab to the partial (or full) list. 3672 */ 3673 static void *alloc_single_from_new_slab(struct kmem_cache *s, struct slab *slab, 3674 int orig_size, gfp_t gfpflags) 3675 { 3676 bool allow_spin = gfpflags_allow_spinning(gfpflags); 3677 int nid = slab_nid(slab); 3678 struct kmem_cache_node *n = get_node(s, nid); 3679 unsigned long flags; 3680 void *object; 3681 3682 if (!allow_spin && !spin_trylock_irqsave(&n->list_lock, flags)) { 3683 /* Unlucky, discard newly allocated slab. */ 3684 free_new_slab_nolock(s, slab); 3685 return NULL; 3686 } 3687 3688 object = slab->freelist; 3689 slab->freelist = get_freepointer(s, object); 3690 slab->inuse = 1; 3691 3692 if (!alloc_debug_processing(s, slab, object, orig_size)) { 3693 /* 3694 * It's not really expected that this would fail on a 3695 * freshly allocated slab, but a concurrent memory 3696 * corruption in theory could cause that. 3697 * Leak memory of allocated slab. 3698 */ 3699 if (!allow_spin) 3700 spin_unlock_irqrestore(&n->list_lock, flags); 3701 return NULL; 3702 } 3703 3704 if (allow_spin) 3705 spin_lock_irqsave(&n->list_lock, flags); 3706 3707 if (slab->inuse == slab->objects) 3708 add_full(s, n, slab); 3709 else 3710 add_partial(n, slab, ADD_TO_HEAD); 3711 3712 inc_slabs_node(s, nid, slab->objects); 3713 spin_unlock_irqrestore(&n->list_lock, flags); 3714 3715 return object; 3716 } 3717 3718 static inline bool pfmemalloc_match(struct slab *slab, gfp_t gfpflags); 3719 3720 static bool get_partial_node_bulk(struct kmem_cache *s, 3721 struct kmem_cache_node *n, 3722 struct partial_bulk_context *pc, 3723 bool allow_spin) 3724 { 3725 struct slab *slab, *slab2; 3726 unsigned int total_free = 0; 3727 unsigned long flags; 3728 3729 /* Racy check to avoid taking the lock unnecessarily. */ 3730 if (!n || data_race(!n->nr_partial)) 3731 return false; 3732 3733 INIT_LIST_HEAD(&pc->slabs); 3734 3735 if (allow_spin) 3736 spin_lock_irqsave(&n->list_lock, flags); 3737 else if (!spin_trylock_irqsave(&n->list_lock, flags)) 3738 return false; 3739 3740 list_for_each_entry_safe(slab, slab2, &n->partial, slab_list) { 3741 struct freelist_counters flc; 3742 unsigned int slab_free; 3743 3744 if (!pfmemalloc_match(slab, pc->flags)) 3745 continue; 3746 3747 /* 3748 * determine the number of free objects in the slab racily 3749 * 3750 * slab_free is a lower bound due to possible subsequent 3751 * concurrent freeing, so the caller may get more objects than 3752 * requested and must handle that 3753 */ 3754 flc.counters = data_race(READ_ONCE(slab->counters)); 3755 slab_free = flc.objects - flc.inuse; 3756 3757 /* we have already min and this would get us over the max */ 3758 if (total_free >= pc->min_objects 3759 && total_free + slab_free > pc->max_objects) 3760 break; 3761 3762 remove_partial(n, slab); 3763 3764 list_add(&slab->slab_list, &pc->slabs); 3765 3766 total_free += slab_free; 3767 if (total_free >= pc->max_objects) 3768 break; 3769 } 3770 3771 spin_unlock_irqrestore(&n->list_lock, flags); 3772 return total_free > 0; 3773 } 3774 3775 /* 3776 * Try to allocate object from a partial slab on a specific node. 3777 */ 3778 static void *get_from_partial_node(struct kmem_cache *s, 3779 struct kmem_cache_node *n, 3780 struct partial_context *pc) 3781 { 3782 struct slab *slab, *slab2; 3783 unsigned long flags; 3784 void *object = NULL; 3785 3786 /* 3787 * Racy check. If we mistakenly see no partial slabs then we 3788 * just allocate an empty slab. If we mistakenly try to get a 3789 * partial slab and there is none available then get_from_partial() 3790 * will return NULL. 3791 */ 3792 if (!n || !n->nr_partial) 3793 return NULL; 3794 3795 if (gfpflags_allow_spinning(pc->flags)) 3796 spin_lock_irqsave(&n->list_lock, flags); 3797 else if (!spin_trylock_irqsave(&n->list_lock, flags)) 3798 return NULL; 3799 list_for_each_entry_safe(slab, slab2, &n->partial, slab_list) { 3800 3801 struct freelist_counters old, new; 3802 3803 if (!pfmemalloc_match(slab, pc->flags)) 3804 continue; 3805 3806 if (IS_ENABLED(CONFIG_SLUB_TINY) || kmem_cache_debug(s)) { 3807 object = alloc_single_from_partial(s, n, slab, 3808 pc->orig_size); 3809 if (object) 3810 break; 3811 continue; 3812 } 3813 3814 /* 3815 * get a single object from the slab. This might race against 3816 * __slab_free(), which however has to take the list_lock if 3817 * it's about to make the slab fully free. 3818 */ 3819 do { 3820 old.freelist = slab->freelist; 3821 old.counters = slab->counters; 3822 3823 new.freelist = get_freepointer(s, old.freelist); 3824 new.counters = old.counters; 3825 new.inuse++; 3826 3827 } while (!__slab_update_freelist(s, slab, &old, &new, "get_from_partial_node")); 3828 3829 object = old.freelist; 3830 if (!new.freelist) 3831 remove_partial(n, slab); 3832 3833 break; 3834 } 3835 spin_unlock_irqrestore(&n->list_lock, flags); 3836 return object; 3837 } 3838 3839 /* 3840 * Get an object from somewhere. Search in increasing NUMA distances. 3841 */ 3842 static void *get_from_any_partial(struct kmem_cache *s, struct partial_context *pc) 3843 { 3844 #ifdef CONFIG_NUMA 3845 struct zonelist *zonelist; 3846 struct zoneref *z; 3847 struct zone *zone; 3848 enum zone_type highest_zoneidx = gfp_zone(pc->flags); 3849 unsigned int cpuset_mems_cookie; 3850 bool allow_spin = gfpflags_allow_spinning(pc->flags); 3851 3852 /* 3853 * The defrag ratio allows a configuration of the tradeoffs between 3854 * inter node defragmentation and node local allocations. A lower 3855 * defrag_ratio increases the tendency to do local allocations 3856 * instead of attempting to obtain partial slabs from other nodes. 3857 * 3858 * If the defrag_ratio is set to 0 then kmalloc() always 3859 * returns node local objects. If the ratio is higher then kmalloc() 3860 * may return off node objects because partial slabs are obtained 3861 * from other nodes and filled up. 3862 * 3863 * If /sys/kernel/slab/xx/remote_node_defrag_ratio is set to 100 3864 * (which makes defrag_ratio = 1000) then every (well almost) 3865 * allocation will first attempt to defrag slab caches on other nodes. 3866 * This means scanning over all nodes to look for partial slabs which 3867 * may be expensive if we do it every time we are trying to find a slab 3868 * with available objects. 3869 */ 3870 if (!s->remote_node_defrag_ratio || 3871 get_cycles() % 1024 > s->remote_node_defrag_ratio) 3872 return NULL; 3873 3874 do { 3875 /* 3876 * read_mems_allowed_begin() accesses current->mems_allowed_seq, 3877 * a seqcount_spinlock_t that is not NMI-safe. Do not access 3878 * current->mems_allowed_seq and avoid retry when GFP flags 3879 * indicate spinning is not allowed. 3880 */ 3881 if (allow_spin) 3882 cpuset_mems_cookie = read_mems_allowed_begin(); 3883 3884 zonelist = node_zonelist(mempolicy_slab_node(), pc->flags); 3885 for_each_zone_zonelist(zone, z, zonelist, highest_zoneidx) { 3886 struct kmem_cache_node *n; 3887 3888 n = get_node(s, zone_to_nid(zone)); 3889 3890 if (n && cpuset_zone_allowed(zone, pc->flags) && 3891 n->nr_partial > s->min_partial) { 3892 3893 void *object = get_from_partial_node(s, n, pc); 3894 3895 if (object) { 3896 /* 3897 * Don't check read_mems_allowed_retry() 3898 * here - if mems_allowed was updated in 3899 * parallel, that was a harmless race 3900 * between allocation and the cpuset 3901 * update 3902 */ 3903 return object; 3904 } 3905 } 3906 } 3907 } while (allow_spin && read_mems_allowed_retry(cpuset_mems_cookie)); 3908 #endif /* CONFIG_NUMA */ 3909 return NULL; 3910 } 3911 3912 /* 3913 * Get an object from a partial slab 3914 */ 3915 static void *get_from_partial(struct kmem_cache *s, int node, 3916 struct partial_context *pc) 3917 { 3918 int searchnode = node; 3919 void *object; 3920 3921 if (node == NUMA_NO_NODE) 3922 searchnode = numa_mem_id(); 3923 3924 object = get_from_partial_node(s, get_node(s, searchnode), pc); 3925 if (object || (node != NUMA_NO_NODE && (pc->flags & __GFP_THISNODE))) 3926 return object; 3927 3928 return get_from_any_partial(s, pc); 3929 } 3930 3931 static bool has_pcs_used(int cpu, struct kmem_cache *s) 3932 { 3933 struct slub_percpu_sheaves *pcs; 3934 3935 if (!cache_has_sheaves(s)) 3936 return false; 3937 3938 pcs = per_cpu_ptr(s->cpu_sheaves, cpu); 3939 3940 return (pcs->spare || pcs->rcu_free || pcs->main->size); 3941 } 3942 3943 /* 3944 * Flush percpu sheaves 3945 * 3946 * Called from CPU work handler with migration disabled. 3947 */ 3948 static void flush_cpu_sheaves(struct work_struct *w) 3949 { 3950 struct kmem_cache *s; 3951 struct slub_flush_work *sfw; 3952 3953 sfw = container_of(w, struct slub_flush_work, work); 3954 3955 s = sfw->s; 3956 3957 if (cache_has_sheaves(s)) 3958 pcs_flush_all(s); 3959 } 3960 3961 static void flush_all_cpus_locked(struct kmem_cache *s) 3962 { 3963 struct slub_flush_work *sfw; 3964 unsigned int cpu; 3965 3966 lockdep_assert_cpus_held(); 3967 mutex_lock(&flush_lock); 3968 3969 for_each_online_cpu(cpu) { 3970 sfw = &per_cpu(slub_flush, cpu); 3971 if (!has_pcs_used(cpu, s)) { 3972 sfw->skip = true; 3973 continue; 3974 } 3975 INIT_WORK(&sfw->work, flush_cpu_sheaves); 3976 sfw->skip = false; 3977 sfw->s = s; 3978 queue_work_on(cpu, flushwq, &sfw->work); 3979 } 3980 3981 for_each_online_cpu(cpu) { 3982 sfw = &per_cpu(slub_flush, cpu); 3983 if (sfw->skip) 3984 continue; 3985 flush_work(&sfw->work); 3986 } 3987 3988 mutex_unlock(&flush_lock); 3989 } 3990 3991 static void flush_all(struct kmem_cache *s) 3992 { 3993 cpus_read_lock(); 3994 flush_all_cpus_locked(s); 3995 cpus_read_unlock(); 3996 } 3997 3998 static void flush_rcu_sheaf(struct work_struct *w) 3999 { 4000 struct slub_percpu_sheaves *pcs; 4001 struct slab_sheaf *rcu_free; 4002 struct slub_flush_work *sfw; 4003 struct kmem_cache *s; 4004 4005 sfw = container_of(w, struct slub_flush_work, work); 4006 s = sfw->s; 4007 4008 local_lock(&s->cpu_sheaves->lock); 4009 pcs = this_cpu_ptr(s->cpu_sheaves); 4010 4011 rcu_free = pcs->rcu_free; 4012 pcs->rcu_free = NULL; 4013 4014 local_unlock(&s->cpu_sheaves->lock); 4015 4016 if (rcu_free) 4017 call_rcu(&rcu_free->rcu_head, rcu_free_sheaf_nobarn); 4018 } 4019 4020 4021 /* needed for kvfree_rcu_barrier() */ 4022 void flush_rcu_sheaves_on_cache(struct kmem_cache *s) 4023 { 4024 struct slub_flush_work *sfw; 4025 unsigned int cpu; 4026 4027 lockdep_assert_cpus_held(); 4028 mutex_lock(&flush_lock); 4029 4030 for_each_online_cpu(cpu) { 4031 sfw = &per_cpu(slub_flush, cpu); 4032 4033 /* 4034 * we don't check if rcu_free sheaf exists - racing 4035 * __kfree_rcu_sheaf() might have just removed it. 4036 * by executing flush_rcu_sheaf() on the cpu we make 4037 * sure the __kfree_rcu_sheaf() finished its call_rcu() 4038 */ 4039 4040 INIT_WORK(&sfw->work, flush_rcu_sheaf); 4041 sfw->s = s; 4042 queue_work_on(cpu, flushwq, &sfw->work); 4043 } 4044 4045 for_each_online_cpu(cpu) { 4046 sfw = &per_cpu(slub_flush, cpu); 4047 flush_work(&sfw->work); 4048 } 4049 4050 mutex_unlock(&flush_lock); 4051 } 4052 4053 void flush_all_rcu_sheaves(void) 4054 { 4055 struct kmem_cache *s; 4056 4057 cpus_read_lock(); 4058 mutex_lock(&slab_mutex); 4059 4060 list_for_each_entry(s, &slab_caches, list) { 4061 if (!cache_has_sheaves(s)) 4062 continue; 4063 flush_rcu_sheaves_on_cache(s); 4064 } 4065 4066 mutex_unlock(&slab_mutex); 4067 cpus_read_unlock(); 4068 4069 rcu_barrier(); 4070 } 4071 4072 static int slub_cpu_setup(unsigned int cpu) 4073 { 4074 int nid = cpu_to_node(cpu); 4075 struct kmem_cache *s; 4076 int ret = 0; 4077 4078 /* 4079 * we never clear a nid so it's safe to do a quick check before taking 4080 * the mutex, and then recheck to handle parallel cpu hotplug safely 4081 */ 4082 if (node_isset(nid, slab_barn_nodes)) 4083 return 0; 4084 4085 mutex_lock(&slab_mutex); 4086 4087 if (node_isset(nid, slab_barn_nodes)) 4088 goto out; 4089 4090 list_for_each_entry(s, &slab_caches, list) { 4091 struct node_barn *barn; 4092 4093 /* 4094 * barn might already exist if a previous callback failed midway 4095 */ 4096 if (!cache_has_sheaves(s) || get_barn_node(s, nid)) 4097 continue; 4098 4099 barn = kmalloc_node(sizeof(*barn), GFP_KERNEL, nid); 4100 4101 if (!barn) { 4102 ret = -ENOMEM; 4103 goto out; 4104 } 4105 4106 barn_init(barn); 4107 s->per_node[nid].barn = barn; 4108 } 4109 node_set(nid, slab_barn_nodes); 4110 4111 out: 4112 mutex_unlock(&slab_mutex); 4113 4114 return ret; 4115 } 4116 4117 /* 4118 * Use the cpu notifier to insure that the cpu slabs are flushed when 4119 * necessary. 4120 */ 4121 static int slub_cpu_dead(unsigned int cpu) 4122 { 4123 struct kmem_cache *s; 4124 4125 mutex_lock(&slab_mutex); 4126 list_for_each_entry(s, &slab_caches, list) { 4127 if (cache_has_sheaves(s)) 4128 __pcs_flush_all_cpu(s, cpu); 4129 } 4130 mutex_unlock(&slab_mutex); 4131 return 0; 4132 } 4133 4134 #ifdef CONFIG_SLUB_DEBUG 4135 static int count_free(struct slab *slab) 4136 { 4137 return slab->objects - slab->inuse; 4138 } 4139 4140 static inline unsigned long node_nr_objs(struct kmem_cache_node *n) 4141 { 4142 return atomic_long_read(&n->total_objects); 4143 } 4144 4145 /* Supports checking bulk free of a constructed freelist */ 4146 static inline bool free_debug_processing(struct kmem_cache *s, 4147 struct slab *slab, void *head, void *tail, int *bulk_cnt, 4148 unsigned long addr, depot_stack_handle_t handle) 4149 { 4150 bool checks_ok = false; 4151 void *object = head; 4152 int cnt = 0; 4153 4154 if (s->flags & SLAB_CONSISTENCY_CHECKS) { 4155 if (!check_slab(s, slab)) 4156 goto out; 4157 } 4158 4159 if (slab->inuse < *bulk_cnt) { 4160 slab_err(s, slab, "Slab has %d allocated objects but %d are to be freed\n", 4161 slab->inuse, *bulk_cnt); 4162 goto out; 4163 } 4164 4165 next_object: 4166 4167 if (++cnt > *bulk_cnt) 4168 goto out_cnt; 4169 4170 if (s->flags & SLAB_CONSISTENCY_CHECKS) { 4171 if (!free_consistency_checks(s, slab, object, addr)) 4172 goto out; 4173 } 4174 4175 if (s->flags & SLAB_STORE_USER) 4176 set_track_update(s, object, TRACK_FREE, addr, handle); 4177 trace(s, slab, object, 0); 4178 /* Freepointer not overwritten by init_object(), SLAB_POISON moved it */ 4179 init_object(s, object, SLUB_RED_INACTIVE); 4180 4181 /* Reached end of constructed freelist yet? */ 4182 if (object != tail) { 4183 object = get_freepointer(s, object); 4184 goto next_object; 4185 } 4186 checks_ok = true; 4187 4188 out_cnt: 4189 if (cnt != *bulk_cnt) { 4190 slab_err(s, slab, "Bulk free expected %d objects but found %d\n", 4191 *bulk_cnt, cnt); 4192 *bulk_cnt = cnt; 4193 } 4194 4195 out: 4196 4197 if (!checks_ok) 4198 slab_fix(s, "Object at 0x%p not freed", object); 4199 4200 return checks_ok; 4201 } 4202 #endif /* CONFIG_SLUB_DEBUG */ 4203 4204 #if defined(CONFIG_SLUB_DEBUG) || defined(SLAB_SUPPORTS_SYSFS) 4205 static unsigned long count_partial(struct kmem_cache_node *n, 4206 int (*get_count)(struct slab *)) 4207 { 4208 unsigned long flags; 4209 unsigned long x = 0; 4210 struct slab *slab; 4211 4212 spin_lock_irqsave(&n->list_lock, flags); 4213 list_for_each_entry(slab, &n->partial, slab_list) 4214 x += get_count(slab); 4215 spin_unlock_irqrestore(&n->list_lock, flags); 4216 return x; 4217 } 4218 #endif /* CONFIG_SLUB_DEBUG || SLAB_SUPPORTS_SYSFS */ 4219 4220 #ifdef CONFIG_SLUB_DEBUG 4221 #define MAX_PARTIAL_TO_SCAN 10000 4222 4223 static unsigned long count_partial_free_approx(struct kmem_cache_node *n) 4224 { 4225 unsigned long flags; 4226 unsigned long x = 0; 4227 struct slab *slab; 4228 4229 spin_lock_irqsave(&n->list_lock, flags); 4230 if (n->nr_partial <= MAX_PARTIAL_TO_SCAN) { 4231 list_for_each_entry(slab, &n->partial, slab_list) 4232 x += slab->objects - slab->inuse; 4233 } else { 4234 /* 4235 * For a long list, approximate the total count of objects in 4236 * it to meet the limit on the number of slabs to scan. 4237 * Scan from both the list's head and tail for better accuracy. 4238 */ 4239 unsigned long scanned = 0; 4240 4241 list_for_each_entry(slab, &n->partial, slab_list) { 4242 x += slab->objects - slab->inuse; 4243 if (++scanned == MAX_PARTIAL_TO_SCAN / 2) 4244 break; 4245 } 4246 list_for_each_entry_reverse(slab, &n->partial, slab_list) { 4247 x += slab->objects - slab->inuse; 4248 if (++scanned == MAX_PARTIAL_TO_SCAN) 4249 break; 4250 } 4251 x = mult_frac(x, n->nr_partial, scanned); 4252 x = min(x, node_nr_objs(n)); 4253 } 4254 spin_unlock_irqrestore(&n->list_lock, flags); 4255 return x; 4256 } 4257 4258 static noinline void 4259 slab_out_of_memory(struct kmem_cache *s, gfp_t gfpflags, int nid) 4260 { 4261 static DEFINE_RATELIMIT_STATE(slub_oom_rs, DEFAULT_RATELIMIT_INTERVAL, 4262 DEFAULT_RATELIMIT_BURST); 4263 int cpu = raw_smp_processor_id(); 4264 int node; 4265 struct kmem_cache_node *n; 4266 4267 if ((gfpflags & __GFP_NOWARN) || !__ratelimit(&slub_oom_rs)) 4268 return; 4269 4270 pr_warn("SLUB: Unable to allocate memory on CPU %u (of node %d) on node %d, gfp=%#x(%pGg)\n", 4271 cpu, cpu_to_node(cpu), nid, gfpflags, &gfpflags); 4272 pr_warn(" cache: %s, object size: %u, buffer size: %u, default order: %u, min order: %u\n", 4273 s->name, s->object_size, s->size, oo_order(s->oo), 4274 oo_order(s->min)); 4275 4276 if (oo_order(s->min) > get_order(s->object_size)) 4277 pr_warn(" %s debugging increased min order, use slab_debug=O to disable.\n", 4278 s->name); 4279 4280 for_each_kmem_cache_node(s, node, n) { 4281 unsigned long nr_slabs; 4282 unsigned long nr_objs; 4283 unsigned long nr_free; 4284 4285 nr_free = count_partial_free_approx(n); 4286 nr_slabs = node_nr_slabs(n); 4287 nr_objs = node_nr_objs(n); 4288 4289 pr_warn(" node %d: slabs: %ld, objs: %ld, free: %ld\n", 4290 node, nr_slabs, nr_objs, nr_free); 4291 } 4292 } 4293 #else /* CONFIG_SLUB_DEBUG */ 4294 static inline void 4295 slab_out_of_memory(struct kmem_cache *s, gfp_t gfpflags, int nid) { } 4296 #endif 4297 4298 static inline bool pfmemalloc_match(struct slab *slab, gfp_t gfpflags) 4299 { 4300 if (unlikely(slab_test_pfmemalloc(slab))) 4301 return gfp_pfmemalloc_allowed(gfpflags); 4302 4303 return true; 4304 } 4305 4306 /* 4307 * Get the slab's freelist and do not freeze it. 4308 * 4309 * Assumes the slab is isolated from node partial list and not frozen. 4310 * 4311 * Assumes this is performed only for caches without debugging so we 4312 * don't need to worry about adding the slab to the full list. 4313 */ 4314 static inline void *get_freelist_nofreeze(struct kmem_cache *s, struct slab *slab) 4315 { 4316 struct freelist_counters old, new; 4317 4318 do { 4319 old.freelist = slab->freelist; 4320 old.counters = slab->counters; 4321 4322 new.freelist = NULL; 4323 new.counters = old.counters; 4324 VM_WARN_ON_ONCE(new.frozen); 4325 4326 new.inuse = old.objects; 4327 4328 } while (!slab_update_freelist(s, slab, &old, &new, "get_freelist_nofreeze")); 4329 4330 return old.freelist; 4331 } 4332 4333 /* 4334 * If the object has been wiped upon free, make sure it's fully initialized by 4335 * zeroing out freelist pointer. 4336 * 4337 * Note that we also wipe custom freelist pointers. 4338 */ 4339 static __always_inline void maybe_wipe_obj_freeptr(struct kmem_cache *s, 4340 void *obj) 4341 { 4342 if (unlikely(slab_want_init_on_free(s)) && obj && 4343 !freeptr_outside_object(s)) 4344 memset((void *)((char *)kasan_reset_tag(obj) + s->offset), 4345 0, sizeof(void *)); 4346 } 4347 4348 static unsigned int alloc_from_new_slab(struct kmem_cache *s, struct slab *slab, 4349 void **p, unsigned int count, bool allow_spin) 4350 { 4351 unsigned int allocated = 0; 4352 struct kmem_cache_node *n; 4353 bool needs_add_partial; 4354 unsigned long flags; 4355 void *object; 4356 4357 /* 4358 * Are we going to put the slab on the partial list? 4359 * Note slab->inuse is 0 on a new slab. 4360 */ 4361 needs_add_partial = (slab->objects > count); 4362 4363 if (!allow_spin && needs_add_partial) { 4364 4365 n = get_node(s, slab_nid(slab)); 4366 4367 if (!spin_trylock_irqsave(&n->list_lock, flags)) { 4368 /* Unlucky, discard newly allocated slab */ 4369 free_new_slab_nolock(s, slab); 4370 return 0; 4371 } 4372 } 4373 4374 object = slab->freelist; 4375 while (object && allocated < count) { 4376 p[allocated] = object; 4377 object = get_freepointer(s, object); 4378 maybe_wipe_obj_freeptr(s, p[allocated]); 4379 4380 slab->inuse++; 4381 allocated++; 4382 } 4383 slab->freelist = object; 4384 4385 if (needs_add_partial) { 4386 4387 if (allow_spin) { 4388 n = get_node(s, slab_nid(slab)); 4389 spin_lock_irqsave(&n->list_lock, flags); 4390 } 4391 add_partial(n, slab, ADD_TO_HEAD); 4392 spin_unlock_irqrestore(&n->list_lock, flags); 4393 } 4394 4395 inc_slabs_node(s, slab_nid(slab), slab->objects); 4396 return allocated; 4397 } 4398 4399 /* 4400 * Slow path. We failed to allocate via percpu sheaves or they are not available 4401 * due to bootstrap or debugging enabled or SLUB_TINY. 4402 * 4403 * We try to allocate from partial slab lists and fall back to allocating a new 4404 * slab. 4405 */ 4406 static void *___slab_alloc(struct kmem_cache *s, gfp_t gfpflags, int node, 4407 unsigned long addr, unsigned int orig_size) 4408 { 4409 bool allow_spin = gfpflags_allow_spinning(gfpflags); 4410 void *object; 4411 struct slab *slab; 4412 struct partial_context pc; 4413 bool try_thisnode = true; 4414 4415 stat(s, ALLOC_SLOWPATH); 4416 4417 new_objects: 4418 4419 pc.flags = gfpflags; 4420 /* 4421 * When a preferred node is indicated but no __GFP_THISNODE 4422 * 4423 * 1) try to get a partial slab from target node only by having 4424 * __GFP_THISNODE in pc.flags for get_from_partial() 4425 * 2) if 1) failed, try to allocate a new slab from target node with 4426 * GPF_NOWAIT | __GFP_THISNODE opportunistically 4427 * 3) if 2) failed, retry with original gfpflags which will allow 4428 * get_from_partial() try partial lists of other nodes before 4429 * potentially allocating new page from other nodes 4430 */ 4431 if (unlikely(node != NUMA_NO_NODE && !(gfpflags & __GFP_THISNODE) 4432 && try_thisnode)) { 4433 if (unlikely(!allow_spin)) 4434 /* Do not upgrade gfp to NOWAIT from more restrictive mode */ 4435 pc.flags = gfpflags | __GFP_THISNODE; 4436 else 4437 pc.flags = GFP_NOWAIT | __GFP_THISNODE; 4438 } 4439 4440 pc.orig_size = orig_size; 4441 object = get_from_partial(s, node, &pc); 4442 if (object) 4443 goto success; 4444 4445 slab = new_slab(s, pc.flags, node); 4446 4447 if (unlikely(!slab)) { 4448 if (node != NUMA_NO_NODE && !(gfpflags & __GFP_THISNODE) 4449 && try_thisnode) { 4450 try_thisnode = false; 4451 goto new_objects; 4452 } 4453 slab_out_of_memory(s, gfpflags, node); 4454 return NULL; 4455 } 4456 4457 stat(s, ALLOC_SLAB); 4458 4459 if (IS_ENABLED(CONFIG_SLUB_TINY) || kmem_cache_debug(s)) { 4460 object = alloc_single_from_new_slab(s, slab, orig_size, gfpflags); 4461 4462 if (likely(object)) 4463 goto success; 4464 } else { 4465 alloc_from_new_slab(s, slab, &object, 1, allow_spin); 4466 4467 /* we don't need to check SLAB_STORE_USER here */ 4468 if (likely(object)) 4469 return object; 4470 } 4471 4472 if (allow_spin) 4473 goto new_objects; 4474 4475 /* This could cause an endless loop. Fail instead. */ 4476 return NULL; 4477 4478 success: 4479 if (kmem_cache_debug_flags(s, SLAB_STORE_USER)) 4480 set_track(s, object, TRACK_ALLOC, addr, gfpflags); 4481 4482 return object; 4483 } 4484 4485 static __always_inline void *__slab_alloc_node(struct kmem_cache *s, 4486 gfp_t gfpflags, int node, unsigned long addr, size_t orig_size) 4487 { 4488 void *object; 4489 4490 #ifdef CONFIG_NUMA 4491 if (static_branch_unlikely(&strict_numa) && 4492 node == NUMA_NO_NODE) { 4493 4494 struct mempolicy *mpol = current->mempolicy; 4495 4496 if (mpol) { 4497 /* 4498 * Special BIND rule support. If the local node 4499 * is in permitted set then do not redirect 4500 * to a particular node. 4501 * Otherwise we apply the memory policy to get 4502 * the node we need to allocate on. 4503 */ 4504 if (mpol->mode != MPOL_BIND || 4505 !node_isset(numa_mem_id(), mpol->nodes)) 4506 node = mempolicy_slab_node(); 4507 } 4508 } 4509 #endif 4510 4511 object = ___slab_alloc(s, gfpflags, node, addr, orig_size); 4512 4513 return object; 4514 } 4515 4516 static __fastpath_inline 4517 struct kmem_cache *slab_pre_alloc_hook(struct kmem_cache *s, gfp_t flags) 4518 { 4519 flags &= gfp_allowed_mask; 4520 4521 might_alloc(flags); 4522 4523 if (unlikely(should_failslab(s, flags))) 4524 return NULL; 4525 4526 return s; 4527 } 4528 4529 static __fastpath_inline 4530 bool slab_post_alloc_hook(struct kmem_cache *s, struct list_lru *lru, 4531 gfp_t flags, size_t size, void **p, bool init, 4532 unsigned int orig_size) 4533 { 4534 unsigned int zero_size = s->object_size; 4535 bool kasan_init = init; 4536 size_t i; 4537 gfp_t init_flags = flags & gfp_allowed_mask; 4538 4539 /* 4540 * For kmalloc object, the allocated memory size(object_size) is likely 4541 * larger than the requested size(orig_size). If redzone check is 4542 * enabled for the extra space, don't zero it, as it will be redzoned 4543 * soon. The redzone operation for this extra space could be seen as a 4544 * replacement of current poisoning under certain debug option, and 4545 * won't break other sanity checks. 4546 */ 4547 if (kmem_cache_debug_flags(s, SLAB_STORE_USER | SLAB_RED_ZONE) && 4548 (s->flags & SLAB_KMALLOC)) 4549 zero_size = orig_size; 4550 4551 /* 4552 * When slab_debug is enabled, avoid memory initialization integrated 4553 * into KASAN and instead zero out the memory via the memset below with 4554 * the proper size. Otherwise, KASAN might overwrite SLUB redzones and 4555 * cause false-positive reports. This does not lead to a performance 4556 * penalty on production builds, as slab_debug is not intended to be 4557 * enabled there. 4558 */ 4559 if (__slub_debug_enabled()) 4560 kasan_init = false; 4561 4562 /* 4563 * As memory initialization might be integrated into KASAN, 4564 * kasan_slab_alloc and initialization memset must be 4565 * kept together to avoid discrepancies in behavior. 4566 * 4567 * As p[i] might get tagged, memset and kmemleak hook come after KASAN. 4568 */ 4569 for (i = 0; i < size; i++) { 4570 p[i] = kasan_slab_alloc(s, p[i], init_flags, kasan_init); 4571 if (p[i] && init && (!kasan_init || 4572 !kasan_has_integrated_init())) 4573 memset(p[i], 0, zero_size); 4574 if (gfpflags_allow_spinning(flags)) 4575 kmemleak_alloc_recursive(p[i], s->object_size, 1, 4576 s->flags, init_flags); 4577 kmsan_slab_alloc(s, p[i], init_flags); 4578 alloc_tagging_slab_alloc_hook(s, p[i], flags); 4579 } 4580 4581 return memcg_slab_post_alloc_hook(s, lru, flags, size, p); 4582 } 4583 4584 /* 4585 * Replace the empty main sheaf with a (at least partially) full sheaf. 4586 * 4587 * Must be called with the cpu_sheaves local lock locked. If successful, returns 4588 * the pcs pointer and the local lock locked (possibly on a different cpu than 4589 * initially called). If not successful, returns NULL and the local lock 4590 * unlocked. 4591 */ 4592 static struct slub_percpu_sheaves * 4593 __pcs_replace_empty_main(struct kmem_cache *s, struct slub_percpu_sheaves *pcs, gfp_t gfp) 4594 { 4595 struct slab_sheaf *empty = NULL; 4596 struct slab_sheaf *full; 4597 struct node_barn *barn; 4598 bool allow_spin; 4599 4600 lockdep_assert_held(this_cpu_ptr(&s->cpu_sheaves->lock)); 4601 4602 /* Bootstrap or debug cache, back off */ 4603 if (unlikely(!cache_has_sheaves(s))) { 4604 local_unlock(&s->cpu_sheaves->lock); 4605 return NULL; 4606 } 4607 4608 if (pcs->spare && pcs->spare->size > 0) { 4609 swap(pcs->main, pcs->spare); 4610 return pcs; 4611 } 4612 4613 barn = get_barn(s); 4614 if (!barn) { 4615 local_unlock(&s->cpu_sheaves->lock); 4616 return NULL; 4617 } 4618 4619 allow_spin = gfpflags_allow_spinning(gfp); 4620 4621 full = barn_replace_empty_sheaf(barn, pcs->main, allow_spin); 4622 4623 if (full) { 4624 stat(s, BARN_GET); 4625 pcs->main = full; 4626 return pcs; 4627 } 4628 4629 stat(s, BARN_GET_FAIL); 4630 4631 if (allow_spin) { 4632 if (pcs->spare) { 4633 empty = pcs->spare; 4634 pcs->spare = NULL; 4635 } else { 4636 empty = barn_get_empty_sheaf(barn, true); 4637 } 4638 } 4639 4640 local_unlock(&s->cpu_sheaves->lock); 4641 pcs = NULL; 4642 4643 if (!allow_spin) 4644 return NULL; 4645 4646 if (!empty) { 4647 empty = alloc_empty_sheaf(s, gfp); 4648 if (!empty) 4649 return NULL; 4650 } 4651 4652 if (refill_sheaf(s, empty, gfp | __GFP_NOMEMALLOC | __GFP_NOWARN)) { 4653 /* 4654 * we must be very low on memory so don't bother 4655 * with the barn 4656 */ 4657 sheaf_flush_unused(s, empty); 4658 free_empty_sheaf(s, empty); 4659 4660 return NULL; 4661 } 4662 4663 full = empty; 4664 empty = NULL; 4665 4666 if (!local_trylock(&s->cpu_sheaves->lock)) 4667 goto barn_put; 4668 pcs = this_cpu_ptr(s->cpu_sheaves); 4669 4670 /* 4671 * If we put any empty or full sheaf to the barn below, it's due to 4672 * racing or being migrated to a different cpu. Breaching the barn's 4673 * sheaf limits should be thus rare enough so just ignore them to 4674 * simplify the recovery. 4675 */ 4676 4677 if (pcs->main->size == 0) { 4678 if (!pcs->spare) 4679 pcs->spare = pcs->main; 4680 else 4681 barn_put_empty_sheaf(barn, pcs->main); 4682 pcs->main = full; 4683 return pcs; 4684 } 4685 4686 if (!pcs->spare) { 4687 pcs->spare = full; 4688 return pcs; 4689 } 4690 4691 if (pcs->spare->size == 0) { 4692 barn_put_empty_sheaf(barn, pcs->spare); 4693 pcs->spare = full; 4694 return pcs; 4695 } 4696 4697 barn_put: 4698 barn_put_full_sheaf(barn, full); 4699 stat(s, BARN_PUT); 4700 4701 return pcs; 4702 } 4703 4704 static __fastpath_inline 4705 void *alloc_from_pcs(struct kmem_cache *s, gfp_t gfp, int node) 4706 { 4707 struct slub_percpu_sheaves *pcs; 4708 bool node_requested; 4709 void *object; 4710 4711 #ifdef CONFIG_NUMA 4712 if (static_branch_unlikely(&strict_numa) && 4713 node == NUMA_NO_NODE) { 4714 4715 struct mempolicy *mpol = current->mempolicy; 4716 4717 if (mpol) { 4718 /* 4719 * Special BIND rule support. If the local node 4720 * is in permitted set then do not redirect 4721 * to a particular node. 4722 * Otherwise we apply the memory policy to get 4723 * the node we need to allocate on. 4724 */ 4725 if (mpol->mode != MPOL_BIND || 4726 !node_isset(numa_mem_id(), mpol->nodes)) 4727 4728 node = mempolicy_slab_node(); 4729 } 4730 } 4731 #endif 4732 4733 node_requested = IS_ENABLED(CONFIG_NUMA) && node != NUMA_NO_NODE; 4734 4735 /* 4736 * We assume the percpu sheaves contain only local objects although it's 4737 * not completely guaranteed, so we verify later. 4738 */ 4739 if (unlikely(node_requested && node != numa_mem_id())) { 4740 stat(s, ALLOC_NODE_MISMATCH); 4741 return NULL; 4742 } 4743 4744 if (!local_trylock(&s->cpu_sheaves->lock)) 4745 return NULL; 4746 4747 pcs = this_cpu_ptr(s->cpu_sheaves); 4748 4749 if (unlikely(pcs->main->size == 0)) { 4750 pcs = __pcs_replace_empty_main(s, pcs, gfp); 4751 if (unlikely(!pcs)) 4752 return NULL; 4753 } 4754 4755 object = pcs->main->objects[pcs->main->size - 1]; 4756 4757 if (unlikely(node_requested)) { 4758 /* 4759 * Verify that the object was from the node we want. This could 4760 * be false because of cpu migration during an unlocked part of 4761 * the current allocation or previous freeing process. 4762 */ 4763 if (page_to_nid(virt_to_page(object)) != node) { 4764 local_unlock(&s->cpu_sheaves->lock); 4765 stat(s, ALLOC_NODE_MISMATCH); 4766 return NULL; 4767 } 4768 } 4769 4770 pcs->main->size--; 4771 4772 local_unlock(&s->cpu_sheaves->lock); 4773 4774 stat(s, ALLOC_FASTPATH); 4775 4776 return object; 4777 } 4778 4779 static __fastpath_inline 4780 unsigned int alloc_from_pcs_bulk(struct kmem_cache *s, gfp_t gfp, size_t size, 4781 void **p) 4782 { 4783 struct slub_percpu_sheaves *pcs; 4784 struct slab_sheaf *main; 4785 unsigned int allocated = 0; 4786 unsigned int batch; 4787 4788 next_batch: 4789 if (!local_trylock(&s->cpu_sheaves->lock)) 4790 return allocated; 4791 4792 pcs = this_cpu_ptr(s->cpu_sheaves); 4793 4794 if (unlikely(pcs->main->size == 0)) { 4795 4796 struct slab_sheaf *full; 4797 struct node_barn *barn; 4798 4799 if (unlikely(!cache_has_sheaves(s))) { 4800 local_unlock(&s->cpu_sheaves->lock); 4801 return allocated; 4802 } 4803 4804 if (pcs->spare && pcs->spare->size > 0) { 4805 swap(pcs->main, pcs->spare); 4806 goto do_alloc; 4807 } 4808 4809 barn = get_barn(s); 4810 if (!barn) { 4811 local_unlock(&s->cpu_sheaves->lock); 4812 return allocated; 4813 } 4814 4815 full = barn_replace_empty_sheaf(barn, pcs->main, 4816 gfpflags_allow_spinning(gfp)); 4817 4818 if (full) { 4819 stat(s, BARN_GET); 4820 pcs->main = full; 4821 goto do_alloc; 4822 } 4823 4824 stat(s, BARN_GET_FAIL); 4825 4826 local_unlock(&s->cpu_sheaves->lock); 4827 4828 /* 4829 * Once full sheaves in barn are depleted, let the bulk 4830 * allocation continue from slab pages, otherwise we would just 4831 * be copying arrays of pointers twice. 4832 */ 4833 return allocated; 4834 } 4835 4836 do_alloc: 4837 4838 main = pcs->main; 4839 batch = min(size, main->size); 4840 4841 main->size -= batch; 4842 memcpy(p, main->objects + main->size, batch * sizeof(void *)); 4843 4844 local_unlock(&s->cpu_sheaves->lock); 4845 4846 stat_add(s, ALLOC_FASTPATH, batch); 4847 4848 allocated += batch; 4849 4850 if (batch < size) { 4851 p += batch; 4852 size -= batch; 4853 goto next_batch; 4854 } 4855 4856 return allocated; 4857 } 4858 4859 4860 /* 4861 * Inlined fastpath so that allocation functions (kmalloc, kmem_cache_alloc) 4862 * have the fastpath folded into their functions. So no function call 4863 * overhead for requests that can be satisfied on the fastpath. 4864 * 4865 * The fastpath works by first checking if the lockless freelist can be used. 4866 * If not then __slab_alloc is called for slow processing. 4867 * 4868 * Otherwise we can simply pick the next object from the lockless free list. 4869 */ 4870 static __fastpath_inline void *slab_alloc_node(struct kmem_cache *s, struct list_lru *lru, 4871 gfp_t gfpflags, int node, unsigned long addr, size_t orig_size) 4872 { 4873 void *object; 4874 bool init = false; 4875 4876 s = slab_pre_alloc_hook(s, gfpflags); 4877 if (unlikely(!s)) 4878 return NULL; 4879 4880 object = kfence_alloc(s, orig_size, gfpflags); 4881 if (unlikely(object)) 4882 goto out; 4883 4884 object = alloc_from_pcs(s, gfpflags, node); 4885 4886 if (!object) 4887 object = __slab_alloc_node(s, gfpflags, node, addr, orig_size); 4888 4889 maybe_wipe_obj_freeptr(s, object); 4890 init = slab_want_init_on_alloc(gfpflags, s); 4891 4892 out: 4893 /* 4894 * When init equals 'true', like for kzalloc() family, only 4895 * @orig_size bytes might be zeroed instead of s->object_size 4896 * In case this fails due to memcg_slab_post_alloc_hook(), 4897 * object is set to NULL 4898 */ 4899 slab_post_alloc_hook(s, lru, gfpflags, 1, &object, init, orig_size); 4900 4901 return object; 4902 } 4903 4904 void *kmem_cache_alloc_noprof(struct kmem_cache *s, gfp_t gfpflags) 4905 { 4906 void *ret = slab_alloc_node(s, NULL, gfpflags, NUMA_NO_NODE, _RET_IP_, 4907 s->object_size); 4908 4909 trace_kmem_cache_alloc(_RET_IP_, ret, s, gfpflags, NUMA_NO_NODE); 4910 4911 return ret; 4912 } 4913 EXPORT_SYMBOL(kmem_cache_alloc_noprof); 4914 4915 void *kmem_cache_alloc_lru_noprof(struct kmem_cache *s, struct list_lru *lru, 4916 gfp_t gfpflags) 4917 { 4918 void *ret = slab_alloc_node(s, lru, gfpflags, NUMA_NO_NODE, _RET_IP_, 4919 s->object_size); 4920 4921 trace_kmem_cache_alloc(_RET_IP_, ret, s, gfpflags, NUMA_NO_NODE); 4922 4923 return ret; 4924 } 4925 EXPORT_SYMBOL(kmem_cache_alloc_lru_noprof); 4926 4927 bool kmem_cache_charge(void *objp, gfp_t gfpflags) 4928 { 4929 if (!memcg_kmem_online()) 4930 return true; 4931 4932 return memcg_slab_post_charge(objp, gfpflags); 4933 } 4934 EXPORT_SYMBOL(kmem_cache_charge); 4935 4936 /** 4937 * kmem_cache_alloc_node - Allocate an object on the specified node 4938 * @s: The cache to allocate from. 4939 * @gfpflags: See kmalloc(). 4940 * @node: node number of the target node. 4941 * 4942 * Identical to kmem_cache_alloc but it will allocate memory on the given 4943 * node, which can improve the performance for cpu bound structures. 4944 * 4945 * Fallback to other node is possible if __GFP_THISNODE is not set. 4946 * 4947 * Return: pointer to the new object or %NULL in case of error 4948 */ 4949 void *kmem_cache_alloc_node_noprof(struct kmem_cache *s, gfp_t gfpflags, int node) 4950 { 4951 void *ret = slab_alloc_node(s, NULL, gfpflags, node, _RET_IP_, s->object_size); 4952 4953 trace_kmem_cache_alloc(_RET_IP_, ret, s, gfpflags, node); 4954 4955 return ret; 4956 } 4957 EXPORT_SYMBOL(kmem_cache_alloc_node_noprof); 4958 4959 static int __prefill_sheaf_pfmemalloc(struct kmem_cache *s, 4960 struct slab_sheaf *sheaf, gfp_t gfp) 4961 { 4962 gfp_t gfp_nomemalloc; 4963 int ret; 4964 4965 gfp_nomemalloc = gfp | __GFP_NOMEMALLOC; 4966 if (gfp_pfmemalloc_allowed(gfp)) 4967 gfp_nomemalloc |= __GFP_NOWARN; 4968 4969 ret = refill_sheaf(s, sheaf, gfp_nomemalloc); 4970 4971 if (likely(!ret || !gfp_pfmemalloc_allowed(gfp))) 4972 return ret; 4973 4974 /* 4975 * if we are allowed to, refill sheaf with pfmemalloc but then remember 4976 * it for when it's returned 4977 */ 4978 ret = refill_sheaf(s, sheaf, gfp); 4979 sheaf->pfmemalloc = true; 4980 4981 return ret; 4982 } 4983 4984 static int __kmem_cache_alloc_bulk(struct kmem_cache *s, gfp_t flags, 4985 size_t size, void **p); 4986 4987 /* 4988 * returns a sheaf that has at least the requested size 4989 * when prefilling is needed, do so with given gfp flags 4990 * 4991 * return NULL if sheaf allocation or prefilling failed 4992 */ 4993 struct slab_sheaf * 4994 kmem_cache_prefill_sheaf(struct kmem_cache *s, gfp_t gfp, unsigned int size) 4995 { 4996 struct slub_percpu_sheaves *pcs; 4997 struct slab_sheaf *sheaf = NULL; 4998 struct node_barn *barn; 4999 5000 if (unlikely(!size)) 5001 return NULL; 5002 5003 if (unlikely(size > s->sheaf_capacity)) { 5004 5005 sheaf = kzalloc_flex(*sheaf, objects, size, gfp); 5006 if (!sheaf) 5007 return NULL; 5008 5009 stat(s, SHEAF_PREFILL_OVERSIZE); 5010 sheaf->cache = s; 5011 sheaf->capacity = size; 5012 5013 /* 5014 * we do not need to care about pfmemalloc here because oversize 5015 * sheaves area always flushed and freed when returned 5016 */ 5017 if (!__kmem_cache_alloc_bulk(s, gfp, size, 5018 &sheaf->objects[0])) { 5019 kfree(sheaf); 5020 return NULL; 5021 } 5022 5023 sheaf->size = size; 5024 5025 return sheaf; 5026 } 5027 5028 local_lock(&s->cpu_sheaves->lock); 5029 pcs = this_cpu_ptr(s->cpu_sheaves); 5030 5031 if (pcs->spare) { 5032 sheaf = pcs->spare; 5033 pcs->spare = NULL; 5034 stat(s, SHEAF_PREFILL_FAST); 5035 } else { 5036 barn = get_barn(s); 5037 5038 stat(s, SHEAF_PREFILL_SLOW); 5039 if (barn) 5040 sheaf = barn_get_full_or_empty_sheaf(barn); 5041 if (sheaf && sheaf->size) 5042 stat(s, BARN_GET); 5043 else 5044 stat(s, BARN_GET_FAIL); 5045 } 5046 5047 local_unlock(&s->cpu_sheaves->lock); 5048 5049 5050 if (!sheaf) 5051 sheaf = alloc_empty_sheaf(s, gfp); 5052 5053 if (sheaf) { 5054 sheaf->capacity = s->sheaf_capacity; 5055 sheaf->pfmemalloc = false; 5056 5057 if (sheaf->size < size && 5058 __prefill_sheaf_pfmemalloc(s, sheaf, gfp)) { 5059 sheaf_flush_unused(s, sheaf); 5060 free_empty_sheaf(s, sheaf); 5061 sheaf = NULL; 5062 } 5063 } 5064 5065 return sheaf; 5066 } 5067 5068 /* 5069 * Use this to return a sheaf obtained by kmem_cache_prefill_sheaf() 5070 * 5071 * If the sheaf cannot simply become the percpu spare sheaf, but there's space 5072 * for a full sheaf in the barn, we try to refill the sheaf back to the cache's 5073 * sheaf_capacity to avoid handling partially full sheaves. 5074 * 5075 * If the refill fails because gfp is e.g. GFP_NOWAIT, or the barn is full, the 5076 * sheaf is instead flushed and freed. 5077 */ 5078 void kmem_cache_return_sheaf(struct kmem_cache *s, gfp_t gfp, 5079 struct slab_sheaf *sheaf) 5080 { 5081 struct slub_percpu_sheaves *pcs; 5082 struct node_barn *barn; 5083 5084 if (unlikely((sheaf->capacity != s->sheaf_capacity) 5085 || sheaf->pfmemalloc)) { 5086 sheaf_flush_unused(s, sheaf); 5087 kfree(sheaf); 5088 return; 5089 } 5090 5091 local_lock(&s->cpu_sheaves->lock); 5092 pcs = this_cpu_ptr(s->cpu_sheaves); 5093 barn = get_barn(s); 5094 5095 if (!pcs->spare) { 5096 pcs->spare = sheaf; 5097 sheaf = NULL; 5098 stat(s, SHEAF_RETURN_FAST); 5099 } 5100 5101 local_unlock(&s->cpu_sheaves->lock); 5102 5103 if (!sheaf) 5104 return; 5105 5106 stat(s, SHEAF_RETURN_SLOW); 5107 5108 /* 5109 * If the barn has too many full sheaves or we fail to refill the sheaf, 5110 * simply flush and free it. 5111 */ 5112 if (!barn || data_race(barn->nr_full) >= MAX_FULL_SHEAVES || 5113 refill_sheaf(s, sheaf, gfp)) { 5114 sheaf_flush_unused(s, sheaf); 5115 free_empty_sheaf(s, sheaf); 5116 return; 5117 } 5118 5119 barn_put_full_sheaf(barn, sheaf); 5120 stat(s, BARN_PUT); 5121 } 5122 5123 /* 5124 * Refill a sheaf previously returned by kmem_cache_prefill_sheaf to at least 5125 * the given size. 5126 * 5127 * Return: 0 on success. The sheaf will contain at least @size objects. 5128 * The sheaf might have been replaced with a new one if more than 5129 * sheaf->capacity objects are requested. 5130 * 5131 * Return: -ENOMEM on failure. Some objects might have been added to the sheaf 5132 * but the sheaf will not be replaced. 5133 * 5134 * In practice we always refill to full sheaf's capacity. 5135 */ 5136 int kmem_cache_refill_sheaf(struct kmem_cache *s, gfp_t gfp, 5137 struct slab_sheaf **sheafp, unsigned int size) 5138 { 5139 struct slab_sheaf *sheaf; 5140 5141 /* 5142 * TODO: do we want to support *sheaf == NULL to be equivalent of 5143 * kmem_cache_prefill_sheaf() ? 5144 */ 5145 if (!sheafp || !(*sheafp)) 5146 return -EINVAL; 5147 5148 sheaf = *sheafp; 5149 if (sheaf->size >= size) 5150 return 0; 5151 5152 if (likely(sheaf->capacity >= size)) { 5153 if (likely(sheaf->capacity == s->sheaf_capacity)) 5154 return __prefill_sheaf_pfmemalloc(s, sheaf, gfp); 5155 5156 if (!__kmem_cache_alloc_bulk(s, gfp, sheaf->capacity - sheaf->size, 5157 &sheaf->objects[sheaf->size])) { 5158 return -ENOMEM; 5159 } 5160 sheaf->size = sheaf->capacity; 5161 5162 return 0; 5163 } 5164 5165 /* 5166 * We had a regular sized sheaf and need an oversize one, or we had an 5167 * oversize one already but need a larger one now. 5168 * This should be a very rare path so let's not complicate it. 5169 */ 5170 sheaf = kmem_cache_prefill_sheaf(s, gfp, size); 5171 if (!sheaf) 5172 return -ENOMEM; 5173 5174 kmem_cache_return_sheaf(s, gfp, *sheafp); 5175 *sheafp = sheaf; 5176 return 0; 5177 } 5178 5179 /* 5180 * Allocate from a sheaf obtained by kmem_cache_prefill_sheaf() 5181 * 5182 * Guaranteed not to fail as many allocations as was the requested size. 5183 * After the sheaf is emptied, it fails - no fallback to the slab cache itself. 5184 * 5185 * The gfp parameter is meant only to specify __GFP_ZERO or __GFP_ACCOUNT 5186 * memcg charging is forced over limit if necessary, to avoid failure. 5187 * 5188 * It is possible that the allocation comes from kfence and then the sheaf 5189 * size is not decreased. 5190 */ 5191 void * 5192 kmem_cache_alloc_from_sheaf_noprof(struct kmem_cache *s, gfp_t gfp, 5193 struct slab_sheaf *sheaf) 5194 { 5195 void *ret = NULL; 5196 bool init; 5197 5198 if (sheaf->size == 0) 5199 goto out; 5200 5201 ret = kfence_alloc(s, s->object_size, gfp); 5202 5203 if (likely(!ret)) 5204 ret = sheaf->objects[--sheaf->size]; 5205 5206 init = slab_want_init_on_alloc(gfp, s); 5207 5208 /* add __GFP_NOFAIL to force successful memcg charging */ 5209 slab_post_alloc_hook(s, NULL, gfp | __GFP_NOFAIL, 1, &ret, init, s->object_size); 5210 out: 5211 trace_kmem_cache_alloc(_RET_IP_, ret, s, gfp, NUMA_NO_NODE); 5212 5213 return ret; 5214 } 5215 5216 unsigned int kmem_cache_sheaf_size(struct slab_sheaf *sheaf) 5217 { 5218 return sheaf->size; 5219 } 5220 /* 5221 * To avoid unnecessary overhead, we pass through large allocation requests 5222 * directly to the page allocator. We use __GFP_COMP, because we will need to 5223 * know the allocation order to free the pages properly in kfree. 5224 */ 5225 static void *___kmalloc_large_node(size_t size, gfp_t flags, int node) 5226 { 5227 struct page *page; 5228 void *ptr = NULL; 5229 unsigned int order = get_order(size); 5230 5231 if (unlikely(flags & GFP_SLAB_BUG_MASK)) 5232 flags = kmalloc_fix_flags(flags); 5233 5234 flags |= __GFP_COMP; 5235 5236 if (node == NUMA_NO_NODE) 5237 page = alloc_frozen_pages_noprof(flags, order); 5238 else 5239 page = __alloc_frozen_pages_noprof(flags, order, node, NULL); 5240 5241 if (page) { 5242 ptr = page_address(page); 5243 mod_lruvec_page_state(page, NR_SLAB_UNRECLAIMABLE_B, 5244 PAGE_SIZE << order); 5245 __SetPageLargeKmalloc(page); 5246 } 5247 5248 ptr = kasan_kmalloc_large(ptr, size, flags); 5249 /* As ptr might get tagged, call kmemleak hook after KASAN. */ 5250 kmemleak_alloc(ptr, size, 1, flags); 5251 kmsan_kmalloc_large(ptr, size, flags); 5252 5253 return ptr; 5254 } 5255 5256 void *__kmalloc_large_noprof(size_t size, gfp_t flags) 5257 { 5258 void *ret = ___kmalloc_large_node(size, flags, NUMA_NO_NODE); 5259 5260 trace_kmalloc(_RET_IP_, ret, size, PAGE_SIZE << get_order(size), 5261 flags, NUMA_NO_NODE); 5262 return ret; 5263 } 5264 EXPORT_SYMBOL(__kmalloc_large_noprof); 5265 5266 void *__kmalloc_large_node_noprof(size_t size, gfp_t flags, int node) 5267 { 5268 void *ret = ___kmalloc_large_node(size, flags, node); 5269 5270 trace_kmalloc(_RET_IP_, ret, size, PAGE_SIZE << get_order(size), 5271 flags, node); 5272 return ret; 5273 } 5274 EXPORT_SYMBOL(__kmalloc_large_node_noprof); 5275 5276 static __always_inline 5277 void *__do_kmalloc_node(size_t size, kmem_buckets *b, gfp_t flags, int node, 5278 unsigned long caller) 5279 { 5280 struct kmem_cache *s; 5281 void *ret; 5282 5283 if (unlikely(size > KMALLOC_MAX_CACHE_SIZE)) { 5284 ret = __kmalloc_large_node_noprof(size, flags, node); 5285 trace_kmalloc(caller, ret, size, 5286 PAGE_SIZE << get_order(size), flags, node); 5287 return ret; 5288 } 5289 5290 if (unlikely(!size)) 5291 return ZERO_SIZE_PTR; 5292 5293 s = kmalloc_slab(size, b, flags, caller); 5294 5295 ret = slab_alloc_node(s, NULL, flags, node, caller, size); 5296 ret = kasan_kmalloc(s, ret, size, flags); 5297 trace_kmalloc(caller, ret, size, s->size, flags, node); 5298 return ret; 5299 } 5300 void *__kmalloc_node_noprof(DECL_BUCKET_PARAMS(size, b), gfp_t flags, int node) 5301 { 5302 return __do_kmalloc_node(size, PASS_BUCKET_PARAM(b), flags, node, _RET_IP_); 5303 } 5304 EXPORT_SYMBOL(__kmalloc_node_noprof); 5305 5306 void *__kmalloc_noprof(size_t size, gfp_t flags) 5307 { 5308 return __do_kmalloc_node(size, NULL, flags, NUMA_NO_NODE, _RET_IP_); 5309 } 5310 EXPORT_SYMBOL(__kmalloc_noprof); 5311 5312 /** 5313 * kmalloc_nolock - Allocate an object of given size from any context. 5314 * @size: size to allocate 5315 * @gfp_flags: GFP flags. Only __GFP_ACCOUNT, __GFP_ZERO, __GFP_NO_OBJ_EXT 5316 * allowed. 5317 * @node: node number of the target node. 5318 * 5319 * Return: pointer to the new object or NULL in case of error. 5320 * NULL does not mean EBUSY or EAGAIN. It means ENOMEM. 5321 * There is no reason to call it again and expect !NULL. 5322 */ 5323 void *kmalloc_nolock_noprof(size_t size, gfp_t gfp_flags, int node) 5324 { 5325 gfp_t alloc_gfp = __GFP_NOWARN | __GFP_NOMEMALLOC | gfp_flags; 5326 struct kmem_cache *s; 5327 bool can_retry = true; 5328 void *ret; 5329 5330 VM_WARN_ON_ONCE(gfp_flags & ~(__GFP_ACCOUNT | __GFP_ZERO | 5331 __GFP_NO_OBJ_EXT)); 5332 5333 if (unlikely(!size)) 5334 return ZERO_SIZE_PTR; 5335 5336 /* 5337 * See the comment for the same check in 5338 * alloc_frozen_pages_nolock_noprof() 5339 */ 5340 if (IS_ENABLED(CONFIG_PREEMPT_RT) && (in_nmi() || in_hardirq())) 5341 return NULL; 5342 5343 /* On UP, spin_trylock() always succeeds even when it is locked */ 5344 if (!IS_ENABLED(CONFIG_SMP) && in_nmi()) 5345 return NULL; 5346 5347 retry: 5348 if (unlikely(size > KMALLOC_MAX_CACHE_SIZE)) 5349 return NULL; 5350 s = kmalloc_slab(size, NULL, alloc_gfp, _RET_IP_); 5351 5352 if (!(s->flags & __CMPXCHG_DOUBLE) && !kmem_cache_debug(s)) 5353 /* 5354 * kmalloc_nolock() is not supported on architectures that 5355 * don't implement cmpxchg16b and thus need slab_lock() 5356 * which could be preempted by a nmi. 5357 * But debug caches don't use that and only rely on 5358 * kmem_cache_node->list_lock, so kmalloc_nolock() can attempt 5359 * to allocate from debug caches by 5360 * spin_trylock_irqsave(&n->list_lock, ...) 5361 */ 5362 return NULL; 5363 5364 ret = alloc_from_pcs(s, alloc_gfp, node); 5365 if (ret) 5366 goto success; 5367 5368 /* 5369 * Do not call slab_alloc_node(), since trylock mode isn't 5370 * compatible with slab_pre_alloc_hook/should_failslab and 5371 * kfence_alloc. Hence call __slab_alloc_node() (at most twice) 5372 * and slab_post_alloc_hook() directly. 5373 */ 5374 ret = __slab_alloc_node(s, alloc_gfp, node, _RET_IP_, size); 5375 5376 /* 5377 * It's possible we failed due to trylock as we preempted someone with 5378 * the sheaves locked, and the list_lock is also held by another cpu. 5379 * But it should be rare that multiple kmalloc buckets would have 5380 * sheaves locked, so try a larger one. 5381 */ 5382 if (!ret && can_retry) { 5383 /* pick the next kmalloc bucket */ 5384 size = s->object_size + 1; 5385 /* 5386 * Another alternative is to 5387 * if (memcg) alloc_gfp &= ~__GFP_ACCOUNT; 5388 * else if (!memcg) alloc_gfp |= __GFP_ACCOUNT; 5389 * to retry from bucket of the same size. 5390 */ 5391 can_retry = false; 5392 goto retry; 5393 } 5394 5395 success: 5396 maybe_wipe_obj_freeptr(s, ret); 5397 slab_post_alloc_hook(s, NULL, alloc_gfp, 1, &ret, 5398 slab_want_init_on_alloc(alloc_gfp, s), size); 5399 5400 ret = kasan_kmalloc(s, ret, size, alloc_gfp); 5401 return ret; 5402 } 5403 EXPORT_SYMBOL_GPL(kmalloc_nolock_noprof); 5404 5405 void *__kmalloc_node_track_caller_noprof(DECL_BUCKET_PARAMS(size, b), gfp_t flags, 5406 int node, unsigned long caller) 5407 { 5408 return __do_kmalloc_node(size, PASS_BUCKET_PARAM(b), flags, node, caller); 5409 5410 } 5411 EXPORT_SYMBOL(__kmalloc_node_track_caller_noprof); 5412 5413 void *__kmalloc_cache_noprof(struct kmem_cache *s, gfp_t gfpflags, size_t size) 5414 { 5415 void *ret = slab_alloc_node(s, NULL, gfpflags, NUMA_NO_NODE, 5416 _RET_IP_, size); 5417 5418 trace_kmalloc(_RET_IP_, ret, size, s->size, gfpflags, NUMA_NO_NODE); 5419 5420 ret = kasan_kmalloc(s, ret, size, gfpflags); 5421 return ret; 5422 } 5423 EXPORT_SYMBOL(__kmalloc_cache_noprof); 5424 5425 void *__kmalloc_cache_node_noprof(struct kmem_cache *s, gfp_t gfpflags, 5426 int node, size_t size) 5427 { 5428 void *ret = slab_alloc_node(s, NULL, gfpflags, node, _RET_IP_, size); 5429 5430 trace_kmalloc(_RET_IP_, ret, size, s->size, gfpflags, node); 5431 5432 ret = kasan_kmalloc(s, ret, size, gfpflags); 5433 return ret; 5434 } 5435 EXPORT_SYMBOL(__kmalloc_cache_node_noprof); 5436 5437 static noinline void free_to_partial_list( 5438 struct kmem_cache *s, struct slab *slab, 5439 void *head, void *tail, int bulk_cnt, 5440 unsigned long addr) 5441 { 5442 struct kmem_cache_node *n = get_node(s, slab_nid(slab)); 5443 struct slab *slab_free = NULL; 5444 int cnt = bulk_cnt; 5445 unsigned long flags; 5446 depot_stack_handle_t handle = 0; 5447 5448 /* 5449 * We cannot use GFP_NOWAIT as there are callsites where waking up 5450 * kswapd could deadlock 5451 */ 5452 if (s->flags & SLAB_STORE_USER) 5453 handle = set_track_prepare(__GFP_NOWARN); 5454 5455 spin_lock_irqsave(&n->list_lock, flags); 5456 5457 if (free_debug_processing(s, slab, head, tail, &cnt, addr, handle)) { 5458 void *prior = slab->freelist; 5459 5460 /* Perform the actual freeing while we still hold the locks */ 5461 slab->inuse -= cnt; 5462 set_freepointer(s, tail, prior); 5463 slab->freelist = head; 5464 5465 /* 5466 * If the slab is empty, and node's partial list is full, 5467 * it should be discarded anyway no matter it's on full or 5468 * partial list. 5469 */ 5470 if (slab->inuse == 0 && n->nr_partial >= s->min_partial) 5471 slab_free = slab; 5472 5473 if (!prior) { 5474 /* was on full list */ 5475 remove_full(s, n, slab); 5476 if (!slab_free) { 5477 add_partial(n, slab, ADD_TO_TAIL); 5478 stat(s, FREE_ADD_PARTIAL); 5479 } 5480 } else if (slab_free) { 5481 remove_partial(n, slab); 5482 stat(s, FREE_REMOVE_PARTIAL); 5483 } 5484 } 5485 5486 if (slab_free) { 5487 /* 5488 * Update the counters while still holding n->list_lock to 5489 * prevent spurious validation warnings 5490 */ 5491 dec_slabs_node(s, slab_nid(slab_free), slab_free->objects); 5492 } 5493 5494 spin_unlock_irqrestore(&n->list_lock, flags); 5495 5496 if (slab_free) { 5497 stat(s, FREE_SLAB); 5498 free_slab(s, slab_free); 5499 } 5500 } 5501 5502 /* 5503 * Slow path handling. This may still be called frequently since objects 5504 * have a longer lifetime than the cpu slabs in most processing loads. 5505 * 5506 * So we still attempt to reduce cache line usage. Just take the slab 5507 * lock and free the item. If there is no additional partial slab 5508 * handling required then we can return immediately. 5509 */ 5510 static void __slab_free(struct kmem_cache *s, struct slab *slab, 5511 void *head, void *tail, int cnt, 5512 unsigned long addr) 5513 5514 { 5515 bool was_full; 5516 struct freelist_counters old, new; 5517 struct kmem_cache_node *n = NULL; 5518 unsigned long flags; 5519 bool on_node_partial; 5520 5521 if (IS_ENABLED(CONFIG_SLUB_TINY) || kmem_cache_debug(s)) { 5522 free_to_partial_list(s, slab, head, tail, cnt, addr); 5523 return; 5524 } 5525 5526 do { 5527 if (unlikely(n)) { 5528 spin_unlock_irqrestore(&n->list_lock, flags); 5529 n = NULL; 5530 } 5531 5532 old.freelist = slab->freelist; 5533 old.counters = slab->counters; 5534 5535 was_full = (old.freelist == NULL); 5536 5537 set_freepointer(s, tail, old.freelist); 5538 5539 new.freelist = head; 5540 new.counters = old.counters; 5541 new.inuse -= cnt; 5542 5543 /* 5544 * Might need to be taken off (due to becoming empty) or added 5545 * to (due to not being full anymore) the partial list. 5546 * Unless it's frozen. 5547 */ 5548 if (!new.inuse || was_full) { 5549 5550 n = get_node(s, slab_nid(slab)); 5551 /* 5552 * Speculatively acquire the list_lock. 5553 * If the cmpxchg does not succeed then we may 5554 * drop the list_lock without any processing. 5555 * 5556 * Otherwise the list_lock will synchronize with 5557 * other processors updating the list of slabs. 5558 */ 5559 spin_lock_irqsave(&n->list_lock, flags); 5560 5561 on_node_partial = slab_test_node_partial(slab); 5562 } 5563 5564 } while (!slab_update_freelist(s, slab, &old, &new, "__slab_free")); 5565 5566 if (likely(!n)) { 5567 /* 5568 * We didn't take the list_lock because the slab was already on 5569 * the partial list and will remain there. 5570 */ 5571 return; 5572 } 5573 5574 /* 5575 * This slab was partially empty but not on the per-node partial list, 5576 * in which case we shouldn't manipulate its list, just return. 5577 */ 5578 if (!was_full && !on_node_partial) { 5579 spin_unlock_irqrestore(&n->list_lock, flags); 5580 return; 5581 } 5582 5583 /* 5584 * If slab became empty, should we add/keep it on the partial list or we 5585 * have enough? 5586 */ 5587 if (unlikely(!new.inuse && n->nr_partial >= s->min_partial)) 5588 goto slab_empty; 5589 5590 /* 5591 * Objects left in the slab. If it was not on the partial list before 5592 * then add it. 5593 */ 5594 if (unlikely(was_full)) { 5595 add_partial(n, slab, ADD_TO_TAIL); 5596 stat(s, FREE_ADD_PARTIAL); 5597 } 5598 spin_unlock_irqrestore(&n->list_lock, flags); 5599 return; 5600 5601 slab_empty: 5602 /* 5603 * The slab could have a single object and thus go from full to empty in 5604 * a single free, but more likely it was on the partial list. Remove it. 5605 */ 5606 if (likely(!was_full)) { 5607 remove_partial(n, slab); 5608 stat(s, FREE_REMOVE_PARTIAL); 5609 } 5610 5611 spin_unlock_irqrestore(&n->list_lock, flags); 5612 stat(s, FREE_SLAB); 5613 discard_slab(s, slab); 5614 } 5615 5616 /* 5617 * pcs is locked. We should have get rid of the spare sheaf and obtained an 5618 * empty sheaf, while the main sheaf is full. We want to install the empty sheaf 5619 * as a main sheaf, and make the current main sheaf a spare sheaf. 5620 * 5621 * However due to having relinquished the cpu_sheaves lock when obtaining 5622 * the empty sheaf, we need to handle some unlikely but possible cases. 5623 * 5624 * If we put any sheaf to barn here, it's because we were interrupted or have 5625 * been migrated to a different cpu, which should be rare enough so just ignore 5626 * the barn's limits to simplify the handling. 5627 * 5628 * An alternative scenario that gets us here is when we fail 5629 * barn_replace_full_sheaf(), because there's no empty sheaf available in the 5630 * barn, so we had to allocate it by alloc_empty_sheaf(). But because we saw the 5631 * limit on full sheaves was not exceeded, we assume it didn't change and just 5632 * put the full sheaf there. 5633 */ 5634 static void __pcs_install_empty_sheaf(struct kmem_cache *s, 5635 struct slub_percpu_sheaves *pcs, struct slab_sheaf *empty, 5636 struct node_barn *barn) 5637 { 5638 lockdep_assert_held(this_cpu_ptr(&s->cpu_sheaves->lock)); 5639 5640 /* This is what we expect to find if nobody interrupted us. */ 5641 if (likely(!pcs->spare)) { 5642 pcs->spare = pcs->main; 5643 pcs->main = empty; 5644 return; 5645 } 5646 5647 /* 5648 * Unlikely because if the main sheaf had space, we would have just 5649 * freed to it. Get rid of our empty sheaf. 5650 */ 5651 if (pcs->main->size < s->sheaf_capacity) { 5652 barn_put_empty_sheaf(barn, empty); 5653 return; 5654 } 5655 5656 /* Also unlikely for the same reason */ 5657 if (pcs->spare->size < s->sheaf_capacity) { 5658 swap(pcs->main, pcs->spare); 5659 barn_put_empty_sheaf(barn, empty); 5660 return; 5661 } 5662 5663 /* 5664 * We probably failed barn_replace_full_sheaf() due to no empty sheaf 5665 * available there, but we allocated one, so finish the job. 5666 */ 5667 barn_put_full_sheaf(barn, pcs->main); 5668 stat(s, BARN_PUT); 5669 pcs->main = empty; 5670 } 5671 5672 /* 5673 * Replace the full main sheaf with a (at least partially) empty sheaf. 5674 * 5675 * Must be called with the cpu_sheaves local lock locked. If successful, returns 5676 * the pcs pointer and the local lock locked (possibly on a different cpu than 5677 * initially called). If not successful, returns NULL and the local lock 5678 * unlocked. 5679 */ 5680 static struct slub_percpu_sheaves * 5681 __pcs_replace_full_main(struct kmem_cache *s, struct slub_percpu_sheaves *pcs, 5682 bool allow_spin) 5683 { 5684 struct slab_sheaf *empty; 5685 struct node_barn *barn; 5686 bool put_fail; 5687 5688 restart: 5689 lockdep_assert_held(this_cpu_ptr(&s->cpu_sheaves->lock)); 5690 5691 /* Bootstrap or debug cache, back off */ 5692 if (unlikely(!cache_has_sheaves(s))) { 5693 local_unlock(&s->cpu_sheaves->lock); 5694 return NULL; 5695 } 5696 5697 barn = get_barn(s); 5698 if (!barn) { 5699 local_unlock(&s->cpu_sheaves->lock); 5700 return NULL; 5701 } 5702 5703 put_fail = false; 5704 5705 if (!pcs->spare) { 5706 empty = barn_get_empty_sheaf(barn, allow_spin); 5707 if (empty) { 5708 pcs->spare = pcs->main; 5709 pcs->main = empty; 5710 return pcs; 5711 } 5712 goto alloc_empty; 5713 } 5714 5715 if (pcs->spare->size < s->sheaf_capacity) { 5716 swap(pcs->main, pcs->spare); 5717 return pcs; 5718 } 5719 5720 empty = barn_replace_full_sheaf(barn, pcs->main, allow_spin); 5721 5722 if (!IS_ERR(empty)) { 5723 stat(s, BARN_PUT); 5724 pcs->main = empty; 5725 return pcs; 5726 } 5727 5728 /* sheaf_flush_unused() doesn't support !allow_spin */ 5729 if (PTR_ERR(empty) == -E2BIG && allow_spin) { 5730 /* Since we got here, spare exists and is full */ 5731 struct slab_sheaf *to_flush = pcs->spare; 5732 5733 stat(s, BARN_PUT_FAIL); 5734 5735 pcs->spare = NULL; 5736 local_unlock(&s->cpu_sheaves->lock); 5737 5738 sheaf_flush_unused(s, to_flush); 5739 empty = to_flush; 5740 goto got_empty; 5741 } 5742 5743 /* 5744 * We could not replace full sheaf because barn had no empty 5745 * sheaves. We can still allocate it and put the full sheaf in 5746 * __pcs_install_empty_sheaf(), but if we fail to allocate it, 5747 * make sure to count the fail. 5748 */ 5749 put_fail = true; 5750 5751 alloc_empty: 5752 local_unlock(&s->cpu_sheaves->lock); 5753 5754 /* 5755 * alloc_empty_sheaf() doesn't support !allow_spin and it's 5756 * easier to fall back to freeing directly without sheaves 5757 * than add the support (and to sheaf_flush_unused() above) 5758 */ 5759 if (!allow_spin) 5760 return NULL; 5761 5762 empty = alloc_empty_sheaf(s, GFP_NOWAIT); 5763 if (empty) 5764 goto got_empty; 5765 5766 if (put_fail) 5767 stat(s, BARN_PUT_FAIL); 5768 5769 if (!sheaf_try_flush_main(s)) 5770 return NULL; 5771 5772 if (!local_trylock(&s->cpu_sheaves->lock)) 5773 return NULL; 5774 5775 pcs = this_cpu_ptr(s->cpu_sheaves); 5776 5777 /* 5778 * we flushed the main sheaf so it should be empty now, 5779 * but in case we got preempted or migrated, we need to 5780 * check again 5781 */ 5782 if (pcs->main->size == s->sheaf_capacity) 5783 goto restart; 5784 5785 return pcs; 5786 5787 got_empty: 5788 if (!local_trylock(&s->cpu_sheaves->lock)) { 5789 barn_put_empty_sheaf(barn, empty); 5790 return NULL; 5791 } 5792 5793 pcs = this_cpu_ptr(s->cpu_sheaves); 5794 __pcs_install_empty_sheaf(s, pcs, empty, barn); 5795 5796 return pcs; 5797 } 5798 5799 /* 5800 * Free an object to the percpu sheaves. 5801 * The object is expected to have passed slab_free_hook() already. 5802 */ 5803 static __fastpath_inline 5804 bool free_to_pcs(struct kmem_cache *s, void *object, bool allow_spin) 5805 { 5806 struct slub_percpu_sheaves *pcs; 5807 5808 if (!local_trylock(&s->cpu_sheaves->lock)) 5809 return false; 5810 5811 pcs = this_cpu_ptr(s->cpu_sheaves); 5812 5813 if (unlikely(pcs->main->size == s->sheaf_capacity)) { 5814 5815 pcs = __pcs_replace_full_main(s, pcs, allow_spin); 5816 if (unlikely(!pcs)) 5817 return false; 5818 } 5819 5820 pcs->main->objects[pcs->main->size++] = object; 5821 5822 local_unlock(&s->cpu_sheaves->lock); 5823 5824 stat(s, FREE_FASTPATH); 5825 5826 return true; 5827 } 5828 5829 static void rcu_free_sheaf(struct rcu_head *head) 5830 { 5831 struct slab_sheaf *sheaf; 5832 struct node_barn *barn = NULL; 5833 struct kmem_cache *s; 5834 5835 sheaf = container_of(head, struct slab_sheaf, rcu_head); 5836 5837 s = sheaf->cache; 5838 5839 /* 5840 * This may remove some objects due to slab_free_hook() returning false, 5841 * so that the sheaf might no longer be completely full. But it's easier 5842 * to handle it as full (unless it became completely empty), as the code 5843 * handles it fine. The only downside is that sheaf will serve fewer 5844 * allocations when reused. It only happens due to debugging, which is a 5845 * performance hit anyway. 5846 * 5847 * If it returns true, there was at least one object from pfmemalloc 5848 * slab so simply flush everything. 5849 */ 5850 if (__rcu_free_sheaf_prepare(s, sheaf)) 5851 goto flush; 5852 5853 barn = get_barn_node(s, sheaf->node); 5854 if (!barn) 5855 goto flush; 5856 5857 /* due to slab_free_hook() */ 5858 if (unlikely(sheaf->size == 0)) 5859 goto empty; 5860 5861 /* 5862 * Checking nr_full/nr_empty outside lock avoids contention in case the 5863 * barn is at the respective limit. Due to the race we might go over the 5864 * limit but that should be rare and harmless. 5865 */ 5866 5867 if (data_race(barn->nr_full) < MAX_FULL_SHEAVES) { 5868 stat(s, BARN_PUT); 5869 barn_put_full_sheaf(barn, sheaf); 5870 return; 5871 } 5872 5873 flush: 5874 stat(s, BARN_PUT_FAIL); 5875 sheaf_flush_unused(s, sheaf); 5876 5877 empty: 5878 if (barn && data_race(barn->nr_empty) < MAX_EMPTY_SHEAVES) { 5879 barn_put_empty_sheaf(barn, sheaf); 5880 return; 5881 } 5882 5883 free_empty_sheaf(s, sheaf); 5884 } 5885 5886 /* 5887 * kvfree_call_rcu() can be called while holding a raw_spinlock_t. Since 5888 * __kfree_rcu_sheaf() may acquire a spinlock_t (sleeping lock on PREEMPT_RT), 5889 * this would violate lock nesting rules. Therefore, kvfree_call_rcu() avoids 5890 * this problem by bypassing the sheaves layer entirely on PREEMPT_RT. 5891 * 5892 * However, lockdep still complains that it is invalid to acquire spinlock_t 5893 * while holding raw_spinlock_t, even on !PREEMPT_RT where spinlock_t is a 5894 * spinning lock. Tell lockdep that acquiring spinlock_t is valid here 5895 * by temporarily raising the wait-type to LD_WAIT_CONFIG. 5896 */ 5897 static DEFINE_WAIT_OVERRIDE_MAP(kfree_rcu_sheaf_map, LD_WAIT_CONFIG); 5898 5899 bool __kfree_rcu_sheaf(struct kmem_cache *s, void *obj) 5900 { 5901 struct slub_percpu_sheaves *pcs; 5902 struct slab_sheaf *rcu_sheaf; 5903 5904 if (WARN_ON_ONCE(IS_ENABLED(CONFIG_PREEMPT_RT))) 5905 return false; 5906 5907 lock_map_acquire_try(&kfree_rcu_sheaf_map); 5908 5909 if (!local_trylock(&s->cpu_sheaves->lock)) 5910 goto fail; 5911 5912 pcs = this_cpu_ptr(s->cpu_sheaves); 5913 5914 if (unlikely(!pcs->rcu_free)) { 5915 5916 struct slab_sheaf *empty; 5917 struct node_barn *barn; 5918 5919 /* Bootstrap or debug cache, fall back */ 5920 if (unlikely(!cache_has_sheaves(s))) { 5921 local_unlock(&s->cpu_sheaves->lock); 5922 goto fail; 5923 } 5924 5925 if (pcs->spare && pcs->spare->size == 0) { 5926 pcs->rcu_free = pcs->spare; 5927 pcs->spare = NULL; 5928 goto do_free; 5929 } 5930 5931 barn = get_barn(s); 5932 if (!barn) { 5933 local_unlock(&s->cpu_sheaves->lock); 5934 goto fail; 5935 } 5936 5937 empty = barn_get_empty_sheaf(barn, true); 5938 5939 if (empty) { 5940 pcs->rcu_free = empty; 5941 goto do_free; 5942 } 5943 5944 local_unlock(&s->cpu_sheaves->lock); 5945 5946 empty = alloc_empty_sheaf(s, GFP_NOWAIT); 5947 5948 if (!empty) 5949 goto fail; 5950 5951 if (!local_trylock(&s->cpu_sheaves->lock)) { 5952 barn_put_empty_sheaf(barn, empty); 5953 goto fail; 5954 } 5955 5956 pcs = this_cpu_ptr(s->cpu_sheaves); 5957 5958 if (unlikely(pcs->rcu_free)) 5959 barn_put_empty_sheaf(barn, empty); 5960 else 5961 pcs->rcu_free = empty; 5962 } 5963 5964 do_free: 5965 5966 rcu_sheaf = pcs->rcu_free; 5967 5968 /* 5969 * Since we flush immediately when size reaches capacity, we never reach 5970 * this with size already at capacity, so no OOB write is possible. 5971 */ 5972 rcu_sheaf->objects[rcu_sheaf->size++] = obj; 5973 5974 if (likely(rcu_sheaf->size < s->sheaf_capacity)) { 5975 rcu_sheaf = NULL; 5976 } else { 5977 pcs->rcu_free = NULL; 5978 rcu_sheaf->node = numa_node_id(); 5979 } 5980 5981 /* 5982 * we flush before local_unlock to make sure a racing 5983 * flush_all_rcu_sheaves() doesn't miss this sheaf 5984 */ 5985 if (rcu_sheaf) 5986 call_rcu(&rcu_sheaf->rcu_head, rcu_free_sheaf); 5987 5988 local_unlock(&s->cpu_sheaves->lock); 5989 5990 stat(s, FREE_RCU_SHEAF); 5991 lock_map_release(&kfree_rcu_sheaf_map); 5992 return true; 5993 5994 fail: 5995 stat(s, FREE_RCU_SHEAF_FAIL); 5996 lock_map_release(&kfree_rcu_sheaf_map); 5997 return false; 5998 } 5999 6000 static __always_inline bool can_free_to_pcs(struct slab *slab) 6001 { 6002 int slab_node; 6003 int numa_node; 6004 6005 if (!IS_ENABLED(CONFIG_NUMA)) 6006 goto check_pfmemalloc; 6007 6008 slab_node = slab_nid(slab); 6009 6010 #ifdef CONFIG_HAVE_MEMORYLESS_NODES 6011 /* 6012 * numa_mem_id() points to the closest node with memory so only allow 6013 * objects from that node to the percpu sheaves 6014 */ 6015 numa_node = numa_mem_id(); 6016 6017 if (likely(slab_node == numa_node)) 6018 goto check_pfmemalloc; 6019 #else 6020 6021 /* 6022 * numa_mem_id() is only a wrapper to numa_node_id() which is where this 6023 * cpu belongs to, but it might be a memoryless node anyway. We don't 6024 * know what the closest node is. 6025 */ 6026 numa_node = numa_node_id(); 6027 6028 /* freed object is from this cpu's node, proceed */ 6029 if (likely(slab_node == numa_node)) 6030 goto check_pfmemalloc; 6031 6032 /* 6033 * Freed object isn't from this cpu's node, but that node is memoryless 6034 * or only has ZONE_MOVABLE memory, which slab cannot allocate from. 6035 * Proceed as it's better to cache remote objects than falling back to 6036 * the slowpath for everything. The allocation side can never obtain 6037 * a local object anyway, if none exist. We don't have numa_mem_id() to 6038 * point to the closest node as we would on a proper memoryless node 6039 * setup. 6040 */ 6041 if (unlikely(!node_state(numa_node, N_NORMAL_MEMORY))) 6042 goto check_pfmemalloc; 6043 #endif 6044 6045 return false; 6046 6047 check_pfmemalloc: 6048 return likely(!slab_test_pfmemalloc(slab)); 6049 } 6050 6051 /* 6052 * Bulk free objects to the percpu sheaves. 6053 * Unlike free_to_pcs() this includes the calls to all necessary hooks 6054 * and the fallback to freeing to slab pages. 6055 */ 6056 static void free_to_pcs_bulk(struct kmem_cache *s, size_t size, void **p) 6057 { 6058 struct slub_percpu_sheaves *pcs; 6059 struct slab_sheaf *main, *empty; 6060 bool init = slab_want_init_on_free(s); 6061 unsigned int batch, i = 0; 6062 struct node_barn *barn; 6063 void *remote_objects[PCS_BATCH_MAX]; 6064 unsigned int remote_nr = 0; 6065 6066 next_remote_batch: 6067 while (i < size) { 6068 struct slab *slab = virt_to_slab(p[i]); 6069 6070 memcg_slab_free_hook(s, slab, p + i, 1); 6071 alloc_tagging_slab_free_hook(s, slab, p + i, 1); 6072 6073 if (unlikely(!slab_free_hook(s, p[i], init, false))) { 6074 p[i] = p[--size]; 6075 continue; 6076 } 6077 6078 if (unlikely(!can_free_to_pcs(slab))) { 6079 remote_objects[remote_nr] = p[i]; 6080 p[i] = p[--size]; 6081 if (++remote_nr >= PCS_BATCH_MAX) 6082 goto flush_remote; 6083 continue; 6084 } 6085 6086 i++; 6087 } 6088 6089 if (!size) 6090 goto flush_remote; 6091 6092 next_batch: 6093 if (!local_trylock(&s->cpu_sheaves->lock)) 6094 goto fallback; 6095 6096 pcs = this_cpu_ptr(s->cpu_sheaves); 6097 6098 if (likely(pcs->main->size < s->sheaf_capacity)) 6099 goto do_free; 6100 6101 barn = get_barn(s); 6102 if (!barn) 6103 goto no_empty; 6104 6105 if (!pcs->spare) { 6106 empty = barn_get_empty_sheaf(barn, true); 6107 if (!empty) 6108 goto no_empty; 6109 6110 pcs->spare = pcs->main; 6111 pcs->main = empty; 6112 goto do_free; 6113 } 6114 6115 if (pcs->spare->size < s->sheaf_capacity) { 6116 swap(pcs->main, pcs->spare); 6117 goto do_free; 6118 } 6119 6120 empty = barn_replace_full_sheaf(barn, pcs->main, true); 6121 if (IS_ERR(empty)) { 6122 stat(s, BARN_PUT_FAIL); 6123 goto no_empty; 6124 } 6125 6126 stat(s, BARN_PUT); 6127 pcs->main = empty; 6128 6129 do_free: 6130 main = pcs->main; 6131 batch = min(size, s->sheaf_capacity - main->size); 6132 6133 memcpy(main->objects + main->size, p, batch * sizeof(void *)); 6134 main->size += batch; 6135 6136 local_unlock(&s->cpu_sheaves->lock); 6137 6138 stat_add(s, FREE_FASTPATH, batch); 6139 6140 if (batch < size) { 6141 p += batch; 6142 size -= batch; 6143 goto next_batch; 6144 } 6145 6146 if (remote_nr) 6147 goto flush_remote; 6148 6149 return; 6150 6151 no_empty: 6152 local_unlock(&s->cpu_sheaves->lock); 6153 6154 /* 6155 * if we depleted all empty sheaves in the barn or there are too 6156 * many full sheaves, free the rest to slab pages 6157 */ 6158 fallback: 6159 __kmem_cache_free_bulk(s, size, p); 6160 stat_add(s, FREE_SLOWPATH, size); 6161 6162 flush_remote: 6163 if (remote_nr) { 6164 __kmem_cache_free_bulk(s, remote_nr, &remote_objects[0]); 6165 stat_add(s, FREE_SLOWPATH, remote_nr); 6166 if (i < size) { 6167 remote_nr = 0; 6168 goto next_remote_batch; 6169 } 6170 } 6171 } 6172 6173 struct defer_free { 6174 struct llist_head objects; 6175 struct irq_work work; 6176 }; 6177 6178 static void free_deferred_objects(struct irq_work *work); 6179 6180 static DEFINE_PER_CPU(struct defer_free, defer_free_objects) = { 6181 .objects = LLIST_HEAD_INIT(objects), 6182 .work = IRQ_WORK_INIT(free_deferred_objects), 6183 }; 6184 6185 /* 6186 * In PREEMPT_RT irq_work runs in per-cpu kthread, so it's safe 6187 * to take sleeping spin_locks from __slab_free(). 6188 * In !PREEMPT_RT irq_work will run after local_unlock_irqrestore(). 6189 */ 6190 static void free_deferred_objects(struct irq_work *work) 6191 { 6192 struct defer_free *df = container_of(work, struct defer_free, work); 6193 struct llist_head *objs = &df->objects; 6194 struct llist_node *llnode, *pos, *t; 6195 6196 if (llist_empty(objs)) 6197 return; 6198 6199 llnode = llist_del_all(objs); 6200 llist_for_each_safe(pos, t, llnode) { 6201 struct kmem_cache *s; 6202 struct slab *slab; 6203 void *x = pos; 6204 6205 slab = virt_to_slab(x); 6206 s = slab->slab_cache; 6207 6208 /* Point 'x' back to the beginning of allocated object */ 6209 x -= s->offset; 6210 6211 /* 6212 * We used freepointer in 'x' to link 'x' into df->objects. 6213 * Clear it to NULL to avoid false positive detection 6214 * of "Freepointer corruption". 6215 */ 6216 set_freepointer(s, x, NULL); 6217 6218 __slab_free(s, slab, x, x, 1, _THIS_IP_); 6219 stat(s, FREE_SLOWPATH); 6220 } 6221 } 6222 6223 static void defer_free(struct kmem_cache *s, void *head) 6224 { 6225 struct defer_free *df; 6226 6227 guard(preempt)(); 6228 6229 head = kasan_reset_tag(head); 6230 6231 df = this_cpu_ptr(&defer_free_objects); 6232 if (llist_add(head + s->offset, &df->objects)) 6233 irq_work_queue(&df->work); 6234 } 6235 6236 void defer_free_barrier(void) 6237 { 6238 int cpu; 6239 6240 for_each_possible_cpu(cpu) 6241 irq_work_sync(&per_cpu_ptr(&defer_free_objects, cpu)->work); 6242 } 6243 6244 static __fastpath_inline 6245 void slab_free(struct kmem_cache *s, struct slab *slab, void *object, 6246 unsigned long addr) 6247 { 6248 memcg_slab_free_hook(s, slab, &object, 1); 6249 alloc_tagging_slab_free_hook(s, slab, &object, 1); 6250 6251 if (unlikely(!slab_free_hook(s, object, slab_want_init_on_free(s), false))) 6252 return; 6253 6254 if (likely(can_free_to_pcs(slab)) && likely(free_to_pcs(s, object, true))) 6255 return; 6256 6257 __slab_free(s, slab, object, object, 1, addr); 6258 stat(s, FREE_SLOWPATH); 6259 } 6260 6261 #ifdef CONFIG_MEMCG 6262 /* Do not inline the rare memcg charging failed path into the allocation path */ 6263 static noinline 6264 void memcg_alloc_abort_single(struct kmem_cache *s, void *object) 6265 { 6266 struct slab *slab = virt_to_slab(object); 6267 6268 alloc_tagging_slab_free_hook(s, slab, &object, 1); 6269 6270 if (likely(slab_free_hook(s, object, slab_want_init_on_free(s), false))) 6271 __slab_free(s, slab, object, object, 1, _RET_IP_); 6272 } 6273 #endif 6274 6275 static __fastpath_inline 6276 void slab_free_bulk(struct kmem_cache *s, struct slab *slab, void *head, 6277 void *tail, void **p, int cnt, unsigned long addr) 6278 { 6279 memcg_slab_free_hook(s, slab, p, cnt); 6280 alloc_tagging_slab_free_hook(s, slab, p, cnt); 6281 /* 6282 * With KASAN enabled slab_free_freelist_hook modifies the freelist 6283 * to remove objects, whose reuse must be delayed. 6284 */ 6285 if (likely(slab_free_freelist_hook(s, &head, &tail, &cnt))) { 6286 __slab_free(s, slab, head, tail, cnt, addr); 6287 stat_add(s, FREE_SLOWPATH, cnt); 6288 } 6289 } 6290 6291 #ifdef CONFIG_SLUB_RCU_DEBUG 6292 static void slab_free_after_rcu_debug(struct rcu_head *rcu_head) 6293 { 6294 struct rcu_delayed_free *delayed_free = 6295 container_of(rcu_head, struct rcu_delayed_free, head); 6296 void *object = delayed_free->object; 6297 struct slab *slab = virt_to_slab(object); 6298 struct kmem_cache *s; 6299 6300 kfree(delayed_free); 6301 6302 if (WARN_ON(is_kfence_address(object))) 6303 return; 6304 6305 /* find the object and the cache again */ 6306 if (WARN_ON(!slab)) 6307 return; 6308 s = slab->slab_cache; 6309 if (WARN_ON(!(s->flags & SLAB_TYPESAFE_BY_RCU))) 6310 return; 6311 6312 /* resume freeing */ 6313 if (slab_free_hook(s, object, slab_want_init_on_free(s), true)) { 6314 __slab_free(s, slab, object, object, 1, _THIS_IP_); 6315 stat(s, FREE_SLOWPATH); 6316 } 6317 } 6318 #endif /* CONFIG_SLUB_RCU_DEBUG */ 6319 6320 #ifdef CONFIG_KASAN_GENERIC 6321 void ___cache_free(struct kmem_cache *cache, void *x, unsigned long addr) 6322 { 6323 __slab_free(cache, virt_to_slab(x), x, x, 1, addr); 6324 stat(cache, FREE_SLOWPATH); 6325 } 6326 #endif 6327 6328 static noinline void warn_free_bad_obj(struct kmem_cache *s, void *obj) 6329 { 6330 struct kmem_cache *cachep; 6331 struct slab *slab; 6332 6333 slab = virt_to_slab(obj); 6334 if (WARN_ONCE(!slab, 6335 "kmem_cache_free(%s, %p): object is not in a slab page\n", 6336 s->name, obj)) 6337 return; 6338 6339 cachep = slab->slab_cache; 6340 6341 if (WARN_ONCE(cachep != s, 6342 "kmem_cache_free(%s, %p): object belongs to different cache %s\n", 6343 s->name, obj, cachep ? cachep->name : "(NULL)")) { 6344 if (cachep) 6345 print_tracking(cachep, obj); 6346 return; 6347 } 6348 } 6349 6350 /** 6351 * kmem_cache_free - Deallocate an object 6352 * @s: The cache the allocation was from. 6353 * @x: The previously allocated object. 6354 * 6355 * Free an object which was previously allocated from this 6356 * cache. 6357 */ 6358 void kmem_cache_free(struct kmem_cache *s, void *x) 6359 { 6360 struct slab *slab; 6361 6362 slab = virt_to_slab(x); 6363 6364 if (IS_ENABLED(CONFIG_SLAB_FREELIST_HARDENED) || 6365 kmem_cache_debug_flags(s, SLAB_CONSISTENCY_CHECKS)) { 6366 6367 /* 6368 * Intentionally leak the object in these cases, because it 6369 * would be too dangerous to continue. 6370 */ 6371 if (unlikely(!slab || (slab->slab_cache != s))) { 6372 warn_free_bad_obj(s, x); 6373 return; 6374 } 6375 } 6376 6377 trace_kmem_cache_free(_RET_IP_, x, s); 6378 slab_free(s, slab, x, _RET_IP_); 6379 } 6380 EXPORT_SYMBOL(kmem_cache_free); 6381 6382 static inline size_t slab_ksize(struct slab *slab) 6383 { 6384 struct kmem_cache *s = slab->slab_cache; 6385 6386 #ifdef CONFIG_SLUB_DEBUG 6387 /* 6388 * Debugging requires use of the padding between object 6389 * and whatever may come after it. 6390 */ 6391 if (s->flags & (SLAB_RED_ZONE | SLAB_POISON)) 6392 return s->object_size; 6393 #endif 6394 if (s->flags & SLAB_KASAN) 6395 return s->object_size; 6396 /* 6397 * If we have the need to store the freelist pointer 6398 * or any other metadata back there then we can 6399 * only use the space before that information. 6400 */ 6401 if (s->flags & (SLAB_TYPESAFE_BY_RCU | SLAB_STORE_USER)) 6402 return s->inuse; 6403 else if (obj_exts_in_object(s, slab)) 6404 return s->inuse; 6405 /* 6406 * Else we can use all the padding etc for the allocation 6407 */ 6408 return s->size; 6409 } 6410 6411 static size_t __ksize(const void *object) 6412 { 6413 struct page *page; 6414 struct slab *slab; 6415 6416 if (unlikely(object == ZERO_SIZE_PTR)) 6417 return 0; 6418 6419 page = virt_to_page(object); 6420 6421 if (unlikely(PageLargeKmalloc(page))) 6422 return large_kmalloc_size(page); 6423 6424 slab = page_slab(page); 6425 /* Delete this after we're sure there are no users */ 6426 if (WARN_ON(!slab)) 6427 return page_size(page); 6428 6429 #ifdef CONFIG_SLUB_DEBUG 6430 skip_orig_size_check(slab->slab_cache, object); 6431 #endif 6432 6433 return slab_ksize(slab); 6434 } 6435 6436 /** 6437 * ksize -- Report full size of underlying allocation 6438 * @objp: pointer to the object 6439 * 6440 * This should only be used internally to query the true size of allocations. 6441 * It is not meant to be a way to discover the usable size of an allocation 6442 * after the fact. Instead, use kmalloc_size_roundup(). Using memory beyond 6443 * the originally requested allocation size may trigger KASAN, UBSAN_BOUNDS, 6444 * and/or FORTIFY_SOURCE. 6445 * 6446 * Return: size of the actual memory used by @objp in bytes 6447 */ 6448 size_t ksize(const void *objp) 6449 { 6450 /* 6451 * We need to first check that the pointer to the object is valid. 6452 * The KASAN report printed from ksize() is more useful, then when 6453 * it's printed later when the behaviour could be undefined due to 6454 * a potential use-after-free or double-free. 6455 * 6456 * We use kasan_check_byte(), which is supported for the hardware 6457 * tag-based KASAN mode, unlike kasan_check_read/write(). 6458 * 6459 * If the pointed to memory is invalid, we return 0 to avoid users of 6460 * ksize() writing to and potentially corrupting the memory region. 6461 * 6462 * We want to perform the check before __ksize(), to avoid potentially 6463 * crashing in __ksize() due to accessing invalid metadata. 6464 */ 6465 if (unlikely(ZERO_OR_NULL_PTR(objp)) || !kasan_check_byte(objp)) 6466 return 0; 6467 6468 return kfence_ksize(objp) ?: __ksize(objp); 6469 } 6470 EXPORT_SYMBOL(ksize); 6471 6472 static void free_large_kmalloc(struct page *page, void *object) 6473 { 6474 unsigned int order = compound_order(page); 6475 6476 if (WARN_ON_ONCE(!PageLargeKmalloc(page))) { 6477 dump_page(page, "Not a kmalloc allocation"); 6478 return; 6479 } 6480 6481 if (WARN_ON_ONCE(order == 0)) 6482 pr_warn_once("object pointer: 0x%p\n", object); 6483 6484 kmemleak_free(object); 6485 kasan_kfree_large(object); 6486 kmsan_kfree_large(object); 6487 6488 mod_lruvec_page_state(page, NR_SLAB_UNRECLAIMABLE_B, 6489 -(PAGE_SIZE << order)); 6490 __ClearPageLargeKmalloc(page); 6491 free_frozen_pages(page, order); 6492 } 6493 6494 /* 6495 * Given an rcu_head embedded within an object obtained from kvmalloc at an 6496 * offset < 4k, free the object in question. 6497 */ 6498 void kvfree_rcu_cb(struct rcu_head *head) 6499 { 6500 void *obj = head; 6501 struct page *page; 6502 struct slab *slab; 6503 struct kmem_cache *s; 6504 void *slab_addr; 6505 6506 if (is_vmalloc_addr(obj)) { 6507 obj = (void *) PAGE_ALIGN_DOWN((unsigned long)obj); 6508 vfree(obj); 6509 return; 6510 } 6511 6512 page = virt_to_page(obj); 6513 slab = page_slab(page); 6514 if (!slab) { 6515 /* 6516 * rcu_head offset can be only less than page size so no need to 6517 * consider allocation order 6518 */ 6519 obj = (void *) PAGE_ALIGN_DOWN((unsigned long)obj); 6520 free_large_kmalloc(page, obj); 6521 return; 6522 } 6523 6524 s = slab->slab_cache; 6525 slab_addr = slab_address(slab); 6526 6527 if (is_kfence_address(obj)) { 6528 obj = kfence_object_start(obj); 6529 } else { 6530 unsigned int idx = __obj_to_index(s, slab_addr, obj); 6531 6532 obj = slab_addr + s->size * idx; 6533 obj = fixup_red_left(s, obj); 6534 } 6535 6536 slab_free(s, slab, obj, _RET_IP_); 6537 } 6538 6539 /** 6540 * kfree - free previously allocated memory 6541 * @object: pointer returned by kmalloc(), kmalloc_nolock(), or kmem_cache_alloc() 6542 * 6543 * If @object is NULL, no operation is performed. 6544 */ 6545 void kfree(const void *object) 6546 { 6547 struct page *page; 6548 struct slab *slab; 6549 struct kmem_cache *s; 6550 void *x = (void *)object; 6551 6552 trace_kfree(_RET_IP_, object); 6553 6554 if (unlikely(ZERO_OR_NULL_PTR(object))) 6555 return; 6556 6557 page = virt_to_page(object); 6558 slab = page_slab(page); 6559 if (!slab) { 6560 /* kmalloc_nolock() doesn't support large kmalloc */ 6561 free_large_kmalloc(page, (void *)object); 6562 return; 6563 } 6564 6565 s = slab->slab_cache; 6566 slab_free(s, slab, x, _RET_IP_); 6567 } 6568 EXPORT_SYMBOL(kfree); 6569 6570 /* 6571 * Can be called while holding raw_spinlock_t or from IRQ and NMI, 6572 * but ONLY for objects allocated by kmalloc_nolock(). 6573 * Debug checks (like kmemleak and kfence) were skipped on allocation, 6574 * hence 6575 * obj = kmalloc(); kfree_nolock(obj); 6576 * will miss kmemleak/kfence book keeping and will cause false positives. 6577 * large_kmalloc is not supported either. 6578 */ 6579 void kfree_nolock(const void *object) 6580 { 6581 struct slab *slab; 6582 struct kmem_cache *s; 6583 void *x = (void *)object; 6584 6585 if (unlikely(ZERO_OR_NULL_PTR(object))) 6586 return; 6587 6588 slab = virt_to_slab(object); 6589 if (unlikely(!slab)) { 6590 WARN_ONCE(1, "large_kmalloc is not supported by kfree_nolock()"); 6591 return; 6592 } 6593 6594 s = slab->slab_cache; 6595 6596 memcg_slab_free_hook(s, slab, &x, 1); 6597 alloc_tagging_slab_free_hook(s, slab, &x, 1); 6598 /* 6599 * Unlike slab_free() do NOT call the following: 6600 * kmemleak_free_recursive(x, s->flags); 6601 * debug_check_no_locks_freed(x, s->object_size); 6602 * debug_check_no_obj_freed(x, s->object_size); 6603 * __kcsan_check_access(x, s->object_size, ..); 6604 * kfence_free(x); 6605 * since they take spinlocks or not safe from any context. 6606 */ 6607 kmsan_slab_free(s, x); 6608 /* 6609 * If KASAN finds a kernel bug it will do kasan_report_invalid_free() 6610 * which will call raw_spin_lock_irqsave() which is technically 6611 * unsafe from NMI, but take chance and report kernel bug. 6612 * The sequence of 6613 * kasan_report_invalid_free() -> raw_spin_lock_irqsave() -> NMI 6614 * -> kfree_nolock() -> kasan_report_invalid_free() on the same CPU 6615 * is double buggy and deserves to deadlock. 6616 */ 6617 if (kasan_slab_pre_free(s, x)) 6618 return; 6619 /* 6620 * memcg, kasan_slab_pre_free are done for 'x'. 6621 * The only thing left is kasan_poison without quarantine, 6622 * since kasan quarantine takes locks and not supported from NMI. 6623 */ 6624 kasan_slab_free(s, x, false, false, /* skip quarantine */true); 6625 6626 if (likely(can_free_to_pcs(slab)) && likely(free_to_pcs(s, x, false))) 6627 return; 6628 6629 /* 6630 * __slab_free() can locklessly cmpxchg16 into a slab, but then it might 6631 * need to take spin_lock for further processing. 6632 * Avoid the complexity and simply add to a deferred list. 6633 */ 6634 defer_free(s, x); 6635 } 6636 EXPORT_SYMBOL_GPL(kfree_nolock); 6637 6638 static __always_inline __realloc_size(2) void * 6639 __do_krealloc(const void *p, size_t new_size, unsigned long align, gfp_t flags, int nid) 6640 { 6641 void *ret; 6642 size_t ks = 0; 6643 int orig_size = 0; 6644 struct kmem_cache *s = NULL; 6645 6646 if (unlikely(ZERO_OR_NULL_PTR(p))) 6647 goto alloc_new; 6648 6649 /* Check for double-free. */ 6650 if (!kasan_check_byte(p)) 6651 return NULL; 6652 6653 if (is_kfence_address(p)) { 6654 ks = orig_size = kfence_ksize(p); 6655 } else { 6656 struct page *page = virt_to_page(p); 6657 struct slab *slab = page_slab(page); 6658 6659 if (!slab) { 6660 /* Big kmalloc object */ 6661 ks = page_size(page); 6662 WARN_ON(ks <= KMALLOC_MAX_CACHE_SIZE); 6663 WARN_ON(p != page_address(page)); 6664 } else { 6665 s = slab->slab_cache; 6666 orig_size = get_orig_size(s, (void *)p); 6667 ks = s->object_size; 6668 } 6669 } 6670 6671 /* 6672 * If reallocation is not necessary (e. g. the new size is less 6673 * than the current allocated size), the current allocation will be 6674 * preserved unless __GFP_THISNODE is set. In the latter case a new 6675 * allocation on the requested node will be attempted. 6676 */ 6677 if (unlikely(flags & __GFP_THISNODE) && nid != NUMA_NO_NODE && 6678 nid != page_to_nid(virt_to_page(p))) 6679 goto alloc_new; 6680 6681 /* If the old object doesn't fit, allocate a bigger one */ 6682 if (new_size > ks) 6683 goto alloc_new; 6684 6685 /* If the old object doesn't satisfy the new alignment, allocate a new one */ 6686 if (!IS_ALIGNED((unsigned long)p, align)) 6687 goto alloc_new; 6688 6689 /* Zero out spare memory. */ 6690 if (want_init_on_alloc(flags)) { 6691 kasan_disable_current(); 6692 if (orig_size && orig_size < new_size) 6693 memset(kasan_reset_tag(p) + orig_size, 0, new_size - orig_size); 6694 else 6695 memset(kasan_reset_tag(p) + new_size, 0, ks - new_size); 6696 kasan_enable_current(); 6697 } 6698 6699 /* Setup kmalloc redzone when needed */ 6700 if (s && slub_debug_orig_size(s)) { 6701 set_orig_size(s, (void *)p, new_size); 6702 if (s->flags & SLAB_RED_ZONE && new_size < ks) 6703 memset_no_sanitize_memory(kasan_reset_tag(p) + new_size, 6704 SLUB_RED_ACTIVE, ks - new_size); 6705 } 6706 6707 p = kasan_krealloc(p, new_size, flags); 6708 return (void *)p; 6709 6710 alloc_new: 6711 ret = kmalloc_node_track_caller_noprof(new_size, flags, nid, _RET_IP_); 6712 if (ret && p) { 6713 /* Disable KASAN checks as the object's redzone is accessed. */ 6714 kasan_disable_current(); 6715 memcpy(ret, kasan_reset_tag(p), min(new_size, (size_t)(orig_size ?: ks))); 6716 kasan_enable_current(); 6717 } 6718 6719 return ret; 6720 } 6721 6722 /** 6723 * krealloc_node_align - reallocate memory. The contents will remain unchanged. 6724 * @p: object to reallocate memory for. 6725 * @new_size: how many bytes of memory are required. 6726 * @align: desired alignment. 6727 * @flags: the type of memory to allocate. 6728 * @nid: NUMA node or NUMA_NO_NODE 6729 * 6730 * If @p is %NULL, krealloc() behaves exactly like kmalloc(). If @new_size 6731 * is 0 and @p is not a %NULL pointer, the object pointed to is freed. 6732 * 6733 * Only alignments up to those guaranteed by kmalloc() will be honored. Please see 6734 * Documentation/core-api/memory-allocation.rst for more details. 6735 * 6736 * If __GFP_ZERO logic is requested, callers must ensure that, starting with the 6737 * initial memory allocation, every subsequent call to this API for the same 6738 * memory allocation is flagged with __GFP_ZERO. Otherwise, it is possible that 6739 * __GFP_ZERO is not fully honored by this API. 6740 * 6741 * When slub_debug_orig_size() is off, krealloc() only knows about the bucket 6742 * size of an allocation (but not the exact size it was allocated with) and 6743 * hence implements the following semantics for shrinking and growing buffers 6744 * with __GFP_ZERO:: 6745 * 6746 * new bucket 6747 * 0 size size 6748 * |--------|----------------| 6749 * | keep | zero | 6750 * 6751 * Otherwise, the original allocation size 'orig_size' could be used to 6752 * precisely clear the requested size, and the new size will also be stored 6753 * as the new 'orig_size'. 6754 * 6755 * In any case, the contents of the object pointed to are preserved up to the 6756 * lesser of the new and old sizes. 6757 * 6758 * Return: pointer to the allocated memory or %NULL in case of error 6759 */ 6760 void *krealloc_node_align_noprof(const void *p, size_t new_size, unsigned long align, 6761 gfp_t flags, int nid) 6762 { 6763 void *ret; 6764 6765 if (unlikely(!new_size)) { 6766 kfree(p); 6767 return ZERO_SIZE_PTR; 6768 } 6769 6770 ret = __do_krealloc(p, new_size, align, flags, nid); 6771 if (ret && kasan_reset_tag(p) != kasan_reset_tag(ret)) 6772 kfree(p); 6773 6774 return ret; 6775 } 6776 EXPORT_SYMBOL(krealloc_node_align_noprof); 6777 6778 static gfp_t kmalloc_gfp_adjust(gfp_t flags, size_t size) 6779 { 6780 /* 6781 * We want to attempt a large physically contiguous block first because 6782 * it is less likely to fragment multiple larger blocks and therefore 6783 * contribute to a long term fragmentation less than vmalloc fallback. 6784 * However make sure that larger requests are not too disruptive - i.e. 6785 * do not direct reclaim unless physically continuous memory is preferred 6786 * (__GFP_RETRY_MAYFAIL mode). We still kick in kswapd/kcompactd to 6787 * start working in the background 6788 */ 6789 if (size > PAGE_SIZE) { 6790 flags |= __GFP_NOWARN; 6791 6792 if (!(flags & __GFP_RETRY_MAYFAIL)) 6793 flags &= ~__GFP_DIRECT_RECLAIM; 6794 6795 /* nofail semantic is implemented by the vmalloc fallback */ 6796 flags &= ~__GFP_NOFAIL; 6797 } 6798 6799 return flags; 6800 } 6801 6802 /** 6803 * __kvmalloc_node - attempt to allocate physically contiguous memory, but upon 6804 * failure, fall back to non-contiguous (vmalloc) allocation. 6805 * @size: size of the request. 6806 * @b: which set of kmalloc buckets to allocate from. 6807 * @align: desired alignment. 6808 * @flags: gfp mask for the allocation - must be compatible (superset) with GFP_KERNEL. 6809 * @node: numa node to allocate from 6810 * 6811 * Only alignments up to those guaranteed by kmalloc() will be honored. Please see 6812 * Documentation/core-api/memory-allocation.rst for more details. 6813 * 6814 * Uses kmalloc to get the memory but if the allocation fails then falls back 6815 * to the vmalloc allocator. Use kvfree for freeing the memory. 6816 * 6817 * GFP_NOWAIT and GFP_ATOMIC are supported, the __GFP_NORETRY modifier is not. 6818 * __GFP_RETRY_MAYFAIL is supported, and it should be used only if kmalloc is 6819 * preferable to the vmalloc fallback, due to visible performance drawbacks. 6820 * 6821 * Return: pointer to the allocated memory of %NULL in case of failure 6822 */ 6823 void *__kvmalloc_node_noprof(DECL_BUCKET_PARAMS(size, b), unsigned long align, 6824 gfp_t flags, int node) 6825 { 6826 bool allow_block; 6827 void *ret; 6828 6829 /* 6830 * It doesn't really make sense to fallback to vmalloc for sub page 6831 * requests 6832 */ 6833 ret = __do_kmalloc_node(size, PASS_BUCKET_PARAM(b), 6834 kmalloc_gfp_adjust(flags, size), 6835 node, _RET_IP_); 6836 if (ret || size <= PAGE_SIZE) 6837 return ret; 6838 6839 /* Don't even allow crazy sizes */ 6840 if (unlikely(size > INT_MAX)) { 6841 WARN_ON_ONCE(!(flags & __GFP_NOWARN)); 6842 return NULL; 6843 } 6844 6845 /* 6846 * For non-blocking the VM_ALLOW_HUGE_VMAP is not used 6847 * because the huge-mapping path in vmalloc contains at 6848 * least one might_sleep() call. 6849 * 6850 * TODO: Revise huge-mapping path to support non-blocking 6851 * flags. 6852 */ 6853 allow_block = gfpflags_allow_blocking(flags); 6854 6855 /* 6856 * kvmalloc() can always use VM_ALLOW_HUGE_VMAP, 6857 * since the callers already cannot assume anything 6858 * about the resulting pointer, and cannot play 6859 * protection games. 6860 */ 6861 return __vmalloc_node_range_noprof(size, align, VMALLOC_START, VMALLOC_END, 6862 flags, PAGE_KERNEL, allow_block ? VM_ALLOW_HUGE_VMAP:0, 6863 node, __builtin_return_address(0)); 6864 } 6865 EXPORT_SYMBOL(__kvmalloc_node_noprof); 6866 6867 /** 6868 * kvfree() - Free memory. 6869 * @addr: Pointer to allocated memory. 6870 * 6871 * kvfree frees memory allocated by any of vmalloc(), kmalloc() or kvmalloc(). 6872 * It is slightly more efficient to use kfree() or vfree() if you are certain 6873 * that you know which one to use. 6874 * 6875 * Context: Either preemptible task context or not-NMI interrupt. 6876 */ 6877 void kvfree(const void *addr) 6878 { 6879 if (is_vmalloc_addr(addr)) 6880 vfree(addr); 6881 else 6882 kfree(addr); 6883 } 6884 EXPORT_SYMBOL(kvfree); 6885 6886 /** 6887 * kvfree_atomic() - Free memory. 6888 * @addr: Pointer to allocated memory. 6889 * 6890 * Same as kvfree(), but uses vfree_atomic() for vmalloc 6891 * backed memory. Must not be called from NMI context. 6892 */ 6893 void kvfree_atomic(const void *addr) 6894 { 6895 if (is_vmalloc_addr(addr)) 6896 vfree_atomic(addr); 6897 else 6898 kfree(addr); 6899 } 6900 EXPORT_SYMBOL(kvfree_atomic); 6901 6902 /** 6903 * kvfree_sensitive - Free a data object containing sensitive information. 6904 * @addr: address of the data object to be freed. 6905 * @len: length of the data object. 6906 * 6907 * Use the special memzero_explicit() function to clear the content of a 6908 * kvmalloc'ed object containing sensitive data to make sure that the 6909 * compiler won't optimize out the data clearing. 6910 */ 6911 void kvfree_sensitive(const void *addr, size_t len) 6912 { 6913 if (likely(!ZERO_OR_NULL_PTR(addr))) { 6914 memzero_explicit((void *)addr, len); 6915 kvfree(addr); 6916 } 6917 } 6918 EXPORT_SYMBOL(kvfree_sensitive); 6919 6920 /** 6921 * kvrealloc_node_align - reallocate memory; contents remain unchanged 6922 * @p: object to reallocate memory for 6923 * @size: the size to reallocate 6924 * @align: desired alignment 6925 * @flags: the flags for the page level allocator 6926 * @nid: NUMA node id 6927 * 6928 * If @p is %NULL, kvrealloc() behaves exactly like kvmalloc(). If @size is 0 6929 * and @p is not a %NULL pointer, the object pointed to is freed. 6930 * 6931 * Only alignments up to those guaranteed by kmalloc() will be honored. Please see 6932 * Documentation/core-api/memory-allocation.rst for more details. 6933 * 6934 * If __GFP_ZERO logic is requested, callers must ensure that, starting with the 6935 * initial memory allocation, every subsequent call to this API for the same 6936 * memory allocation is flagged with __GFP_ZERO. Otherwise, it is possible that 6937 * __GFP_ZERO is not fully honored by this API. 6938 * 6939 * In any case, the contents of the object pointed to are preserved up to the 6940 * lesser of the new and old sizes. 6941 * 6942 * This function must not be called concurrently with itself or kvfree() for the 6943 * same memory allocation. 6944 * 6945 * Return: pointer to the allocated memory or %NULL in case of error 6946 */ 6947 void *kvrealloc_node_align_noprof(const void *p, size_t size, unsigned long align, 6948 gfp_t flags, int nid) 6949 { 6950 void *n; 6951 6952 if (is_vmalloc_addr(p)) 6953 return vrealloc_node_align_noprof(p, size, align, flags, nid); 6954 6955 n = krealloc_node_align_noprof(p, size, align, kmalloc_gfp_adjust(flags, size), nid); 6956 if (!n) { 6957 /* We failed to krealloc(), fall back to kvmalloc(). */ 6958 n = kvmalloc_node_align_noprof(size, align, flags, nid); 6959 if (!n) 6960 return NULL; 6961 6962 if (p) { 6963 /* We already know that `p` is not a vmalloc address. */ 6964 kasan_disable_current(); 6965 memcpy(n, kasan_reset_tag(p), min(size, ksize(p))); 6966 kasan_enable_current(); 6967 6968 kfree(p); 6969 } 6970 } 6971 6972 return n; 6973 } 6974 EXPORT_SYMBOL(kvrealloc_node_align_noprof); 6975 6976 struct detached_freelist { 6977 struct slab *slab; 6978 void *tail; 6979 void *freelist; 6980 int cnt; 6981 struct kmem_cache *s; 6982 }; 6983 6984 /* 6985 * This function progressively scans the array with free objects (with 6986 * a limited look ahead) and extract objects belonging to the same 6987 * slab. It builds a detached freelist directly within the given 6988 * slab/objects. This can happen without any need for 6989 * synchronization, because the objects are owned by running process. 6990 * The freelist is build up as a single linked list in the objects. 6991 * The idea is, that this detached freelist can then be bulk 6992 * transferred to the real freelist(s), but only requiring a single 6993 * synchronization primitive. Look ahead in the array is limited due 6994 * to performance reasons. 6995 */ 6996 static inline 6997 int build_detached_freelist(struct kmem_cache *s, size_t size, 6998 void **p, struct detached_freelist *df) 6999 { 7000 int lookahead = 3; 7001 void *object; 7002 struct page *page; 7003 struct slab *slab; 7004 size_t same; 7005 7006 object = p[--size]; 7007 page = virt_to_page(object); 7008 slab = page_slab(page); 7009 if (!s) { 7010 /* Handle kalloc'ed objects */ 7011 if (!slab) { 7012 free_large_kmalloc(page, object); 7013 df->slab = NULL; 7014 return size; 7015 } 7016 /* Derive kmem_cache from object */ 7017 df->slab = slab; 7018 df->s = slab->slab_cache; 7019 } else { 7020 df->slab = slab; 7021 df->s = s; 7022 } 7023 7024 /* Start new detached freelist */ 7025 df->tail = object; 7026 df->freelist = object; 7027 df->cnt = 1; 7028 7029 if (is_kfence_address(object)) 7030 return size; 7031 7032 set_freepointer(df->s, object, NULL); 7033 7034 same = size; 7035 while (size) { 7036 object = p[--size]; 7037 /* df->slab is always set at this point */ 7038 if (df->slab == virt_to_slab(object)) { 7039 /* Opportunity build freelist */ 7040 set_freepointer(df->s, object, df->freelist); 7041 df->freelist = object; 7042 df->cnt++; 7043 same--; 7044 if (size != same) 7045 swap(p[size], p[same]); 7046 continue; 7047 } 7048 7049 /* Limit look ahead search */ 7050 if (!--lookahead) 7051 break; 7052 } 7053 7054 return same; 7055 } 7056 7057 /* 7058 * Internal bulk free of objects that were not initialised by the post alloc 7059 * hooks and thus should not be processed by the free hooks 7060 */ 7061 static void __kmem_cache_free_bulk(struct kmem_cache *s, size_t size, void **p) 7062 { 7063 if (!size) 7064 return; 7065 7066 do { 7067 struct detached_freelist df; 7068 7069 size = build_detached_freelist(s, size, p, &df); 7070 if (!df.slab) 7071 continue; 7072 7073 if (kfence_free(df.freelist)) 7074 continue; 7075 7076 __slab_free(df.s, df.slab, df.freelist, df.tail, df.cnt, 7077 _RET_IP_); 7078 } while (likely(size)); 7079 } 7080 7081 /* Note that interrupts must be enabled when calling this function. */ 7082 void kmem_cache_free_bulk(struct kmem_cache *s, size_t size, void **p) 7083 { 7084 if (!size) 7085 return; 7086 7087 /* 7088 * freeing to sheaves is so incompatible with the detached freelist so 7089 * once we go that way, we have to do everything differently 7090 */ 7091 if (s && cache_has_sheaves(s)) { 7092 free_to_pcs_bulk(s, size, p); 7093 return; 7094 } 7095 7096 do { 7097 struct detached_freelist df; 7098 7099 size = build_detached_freelist(s, size, p, &df); 7100 if (!df.slab) 7101 continue; 7102 7103 slab_free_bulk(df.s, df.slab, df.freelist, df.tail, &p[size], 7104 df.cnt, _RET_IP_); 7105 } while (likely(size)); 7106 } 7107 EXPORT_SYMBOL(kmem_cache_free_bulk); 7108 7109 static unsigned int 7110 __refill_objects_node(struct kmem_cache *s, void **p, gfp_t gfp, unsigned int min, 7111 unsigned int max, struct kmem_cache_node *n, 7112 bool allow_spin) 7113 { 7114 struct partial_bulk_context pc; 7115 struct slab *slab, *slab2; 7116 unsigned int refilled = 0; 7117 unsigned long flags; 7118 void *object; 7119 7120 pc.flags = gfp; 7121 pc.min_objects = min; 7122 pc.max_objects = max; 7123 7124 if (!get_partial_node_bulk(s, n, &pc, allow_spin)) 7125 return 0; 7126 7127 list_for_each_entry_safe(slab, slab2, &pc.slabs, slab_list) { 7128 7129 list_del(&slab->slab_list); 7130 7131 object = get_freelist_nofreeze(s, slab); 7132 7133 while (object && refilled < max) { 7134 p[refilled] = object; 7135 object = get_freepointer(s, object); 7136 maybe_wipe_obj_freeptr(s, p[refilled]); 7137 7138 refilled++; 7139 } 7140 7141 /* 7142 * Freelist had more objects than we can accommodate, we need to 7143 * free them back. We can treat it like a detached freelist, just 7144 * need to find the tail object. 7145 */ 7146 if (unlikely(object)) { 7147 void *head = object; 7148 void *tail; 7149 int cnt = 0; 7150 7151 do { 7152 tail = object; 7153 cnt++; 7154 object = get_freepointer(s, object); 7155 } while (object); 7156 __slab_free(s, slab, head, tail, cnt, _RET_IP_); 7157 } 7158 7159 if (refilled >= max) 7160 break; 7161 } 7162 7163 if (unlikely(!list_empty(&pc.slabs))) { 7164 spin_lock_irqsave(&n->list_lock, flags); 7165 7166 list_for_each_entry_safe(slab, slab2, &pc.slabs, slab_list) { 7167 7168 if (unlikely(!slab->inuse && n->nr_partial >= s->min_partial)) 7169 continue; 7170 7171 list_del(&slab->slab_list); 7172 add_partial(n, slab, ADD_TO_HEAD); 7173 } 7174 7175 spin_unlock_irqrestore(&n->list_lock, flags); 7176 7177 /* any slabs left are completely free and for discard */ 7178 list_for_each_entry_safe(slab, slab2, &pc.slabs, slab_list) { 7179 7180 list_del(&slab->slab_list); 7181 discard_slab(s, slab); 7182 } 7183 } 7184 7185 return refilled; 7186 } 7187 7188 #ifdef CONFIG_NUMA 7189 static unsigned int 7190 __refill_objects_any(struct kmem_cache *s, void **p, gfp_t gfp, unsigned int min, 7191 unsigned int max) 7192 { 7193 struct zonelist *zonelist; 7194 struct zoneref *z; 7195 struct zone *zone; 7196 enum zone_type highest_zoneidx = gfp_zone(gfp); 7197 unsigned int cpuset_mems_cookie; 7198 unsigned int refilled = 0; 7199 7200 /* see get_from_any_partial() for the defrag ratio description */ 7201 if (!s->remote_node_defrag_ratio || 7202 get_cycles() % 1024 > s->remote_node_defrag_ratio) 7203 return 0; 7204 7205 do { 7206 cpuset_mems_cookie = read_mems_allowed_begin(); 7207 zonelist = node_zonelist(mempolicy_slab_node(), gfp); 7208 for_each_zone_zonelist(zone, z, zonelist, highest_zoneidx) { 7209 struct kmem_cache_node *n; 7210 unsigned int r; 7211 7212 n = get_node(s, zone_to_nid(zone)); 7213 7214 if (!n || !cpuset_zone_allowed(zone, gfp) || 7215 n->nr_partial <= s->min_partial) 7216 continue; 7217 7218 r = __refill_objects_node(s, p, gfp, min, max, n, 7219 /* allow_spin = */ false); 7220 refilled += r; 7221 7222 if (r >= min) { 7223 /* 7224 * Don't check read_mems_allowed_retry() here - 7225 * if mems_allowed was updated in parallel, that 7226 * was a harmless race between allocation and 7227 * the cpuset update 7228 */ 7229 return refilled; 7230 } 7231 p += r; 7232 min -= r; 7233 max -= r; 7234 } 7235 } while (read_mems_allowed_retry(cpuset_mems_cookie)); 7236 7237 return refilled; 7238 } 7239 #else 7240 static inline unsigned int 7241 __refill_objects_any(struct kmem_cache *s, void **p, gfp_t gfp, unsigned int min, 7242 unsigned int max) 7243 { 7244 return 0; 7245 } 7246 #endif 7247 7248 static unsigned int 7249 refill_objects(struct kmem_cache *s, void **p, gfp_t gfp, unsigned int min, 7250 unsigned int max) 7251 { 7252 int local_node = numa_mem_id(); 7253 unsigned int refilled; 7254 struct slab *slab; 7255 7256 if (WARN_ON_ONCE(!gfpflags_allow_spinning(gfp))) 7257 return 0; 7258 7259 refilled = __refill_objects_node(s, p, gfp, min, max, 7260 get_node(s, local_node), 7261 /* allow_spin = */ true); 7262 if (refilled >= min) 7263 return refilled; 7264 7265 refilled += __refill_objects_any(s, p + refilled, gfp, min - refilled, 7266 max - refilled); 7267 if (refilled >= min) 7268 return refilled; 7269 7270 new_slab: 7271 7272 slab = new_slab(s, gfp, local_node); 7273 if (!slab) 7274 goto out; 7275 7276 stat(s, ALLOC_SLAB); 7277 7278 /* 7279 * TODO: possible optimization - if we know we will consume the whole 7280 * slab we might skip creating the freelist? 7281 */ 7282 refilled += alloc_from_new_slab(s, slab, p + refilled, max - refilled, 7283 /* allow_spin = */ true); 7284 7285 if (refilled < min) 7286 goto new_slab; 7287 7288 out: 7289 return refilled; 7290 } 7291 7292 static inline 7293 int __kmem_cache_alloc_bulk(struct kmem_cache *s, gfp_t flags, size_t size, 7294 void **p) 7295 { 7296 int i; 7297 7298 if (IS_ENABLED(CONFIG_SLUB_TINY) || kmem_cache_debug(s)) { 7299 for (i = 0; i < size; i++) { 7300 7301 p[i] = ___slab_alloc(s, flags, NUMA_NO_NODE, _RET_IP_, 7302 s->object_size); 7303 if (unlikely(!p[i])) 7304 goto error; 7305 7306 maybe_wipe_obj_freeptr(s, p[i]); 7307 } 7308 } else { 7309 i = refill_objects(s, p, flags, size, size); 7310 if (i < size) 7311 goto error; 7312 stat_add(s, ALLOC_SLOWPATH, i); 7313 } 7314 7315 return i; 7316 7317 error: 7318 __kmem_cache_free_bulk(s, i, p); 7319 return 0; 7320 7321 } 7322 7323 /* 7324 * Note that interrupts must be enabled when calling this function and gfp 7325 * flags must allow spinning. 7326 */ 7327 int kmem_cache_alloc_bulk_noprof(struct kmem_cache *s, gfp_t flags, size_t size, 7328 void **p) 7329 { 7330 unsigned int i = 0; 7331 void *kfence_obj; 7332 7333 if (!size) 7334 return 0; 7335 7336 s = slab_pre_alloc_hook(s, flags); 7337 if (unlikely(!s)) 7338 return 0; 7339 7340 /* 7341 * to make things simpler, only assume at most once kfence allocated 7342 * object per bulk allocation and choose its index randomly 7343 */ 7344 kfence_obj = kfence_alloc(s, s->object_size, flags); 7345 7346 if (unlikely(kfence_obj)) { 7347 if (unlikely(size == 1)) { 7348 p[0] = kfence_obj; 7349 goto out; 7350 } 7351 size--; 7352 } 7353 7354 i = alloc_from_pcs_bulk(s, flags, size, p); 7355 7356 if (i < size) { 7357 /* 7358 * If we ran out of memory, don't bother with freeing back to 7359 * the percpu sheaves, we have bigger problems. 7360 */ 7361 if (unlikely(__kmem_cache_alloc_bulk(s, flags, size - i, p + i) == 0)) { 7362 if (i > 0) 7363 __kmem_cache_free_bulk(s, i, p); 7364 if (kfence_obj) 7365 __kfence_free(kfence_obj); 7366 return 0; 7367 } 7368 } 7369 7370 if (unlikely(kfence_obj)) { 7371 int idx = get_random_u32_below(size + 1); 7372 7373 if (idx != size) 7374 p[size] = p[idx]; 7375 p[idx] = kfence_obj; 7376 7377 size++; 7378 } 7379 7380 out: 7381 /* 7382 * memcg and kmem_cache debug support and memory initialization. 7383 * Done outside of the IRQ disabled fastpath loop. 7384 */ 7385 if (unlikely(!slab_post_alloc_hook(s, NULL, flags, size, p, 7386 slab_want_init_on_alloc(flags, s), s->object_size))) { 7387 return 0; 7388 } 7389 7390 return size; 7391 } 7392 EXPORT_SYMBOL(kmem_cache_alloc_bulk_noprof); 7393 7394 /* 7395 * Object placement in a slab is made very easy because we always start at 7396 * offset 0. If we tune the size of the object to the alignment then we can 7397 * get the required alignment by putting one properly sized object after 7398 * another. 7399 * 7400 * Notice that the allocation order determines the sizes of the per cpu 7401 * caches. Each processor has always one slab available for allocations. 7402 * Increasing the allocation order reduces the number of times that slabs 7403 * must be moved on and off the partial lists and is therefore a factor in 7404 * locking overhead. 7405 */ 7406 7407 /* 7408 * Minimum / Maximum order of slab pages. This influences locking overhead 7409 * and slab fragmentation. A higher order reduces the number of partial slabs 7410 * and increases the number of allocations possible without having to 7411 * take the list_lock. 7412 */ 7413 static unsigned int slub_min_order; 7414 static unsigned int slub_max_order = 7415 IS_ENABLED(CONFIG_SLUB_TINY) ? 1 : PAGE_ALLOC_COSTLY_ORDER; 7416 static unsigned int slub_min_objects; 7417 7418 /* 7419 * Calculate the order of allocation given an slab object size. 7420 * 7421 * The order of allocation has significant impact on performance and other 7422 * system components. Generally order 0 allocations should be preferred since 7423 * order 0 does not cause fragmentation in the page allocator. Larger objects 7424 * be problematic to put into order 0 slabs because there may be too much 7425 * unused space left. We go to a higher order if more than 1/16th of the slab 7426 * would be wasted. 7427 * 7428 * In order to reach satisfactory performance we must ensure that a minimum 7429 * number of objects is in one slab. Otherwise we may generate too much 7430 * activity on the partial lists which requires taking the list_lock. This is 7431 * less a concern for large slabs though which are rarely used. 7432 * 7433 * slab_max_order specifies the order where we begin to stop considering the 7434 * number of objects in a slab as critical. If we reach slab_max_order then 7435 * we try to keep the page order as low as possible. So we accept more waste 7436 * of space in favor of a small page order. 7437 * 7438 * Higher order allocations also allow the placement of more objects in a 7439 * slab and thereby reduce object handling overhead. If the user has 7440 * requested a higher minimum order then we start with that one instead of 7441 * the smallest order which will fit the object. 7442 */ 7443 static inline unsigned int calc_slab_order(unsigned int size, 7444 unsigned int min_order, unsigned int max_order, 7445 unsigned int fract_leftover) 7446 { 7447 unsigned int order; 7448 7449 for (order = min_order; order <= max_order; order++) { 7450 7451 unsigned int slab_size = (unsigned int)PAGE_SIZE << order; 7452 unsigned int rem; 7453 7454 rem = slab_size % size; 7455 7456 if (rem <= slab_size / fract_leftover) 7457 break; 7458 } 7459 7460 return order; 7461 } 7462 7463 static inline int calculate_order(unsigned int size) 7464 { 7465 unsigned int order; 7466 unsigned int min_objects; 7467 unsigned int max_objects; 7468 unsigned int min_order; 7469 7470 min_objects = slub_min_objects; 7471 if (!min_objects) { 7472 /* 7473 * Some architectures will only update present cpus when 7474 * onlining them, so don't trust the number if it's just 1. But 7475 * we also don't want to use nr_cpu_ids always, as on some other 7476 * architectures, there can be many possible cpus, but never 7477 * onlined. Here we compromise between trying to avoid too high 7478 * order on systems that appear larger than they are, and too 7479 * low order on systems that appear smaller than they are. 7480 */ 7481 unsigned int nr_cpus = num_present_cpus(); 7482 if (nr_cpus <= 1) 7483 nr_cpus = nr_cpu_ids; 7484 min_objects = 4 * (fls(nr_cpus) + 1); 7485 } 7486 /* min_objects can't be 0 because get_order(0) is undefined */ 7487 max_objects = max(order_objects(slub_max_order, size), 1U); 7488 min_objects = min(min_objects, max_objects); 7489 7490 min_order = max_t(unsigned int, slub_min_order, 7491 get_order(min_objects * size)); 7492 if (order_objects(min_order, size) > MAX_OBJS_PER_PAGE) 7493 return get_order(size * MAX_OBJS_PER_PAGE) - 1; 7494 7495 /* 7496 * Attempt to find best configuration for a slab. This works by first 7497 * attempting to generate a layout with the best possible configuration 7498 * and backing off gradually. 7499 * 7500 * We start with accepting at most 1/16 waste and try to find the 7501 * smallest order from min_objects-derived/slab_min_order up to 7502 * slab_max_order that will satisfy the constraint. Note that increasing 7503 * the order can only result in same or less fractional waste, not more. 7504 * 7505 * If that fails, we increase the acceptable fraction of waste and try 7506 * again. The last iteration with fraction of 1/2 would effectively 7507 * accept any waste and give us the order determined by min_objects, as 7508 * long as at least single object fits within slab_max_order. 7509 */ 7510 for (unsigned int fraction = 16; fraction > 1; fraction /= 2) { 7511 order = calc_slab_order(size, min_order, slub_max_order, 7512 fraction); 7513 if (order <= slub_max_order) 7514 return order; 7515 } 7516 7517 /* 7518 * Doh this slab cannot be placed using slab_max_order. 7519 */ 7520 order = get_order(size); 7521 if (order <= MAX_PAGE_ORDER) 7522 return order; 7523 return -ENOSYS; 7524 } 7525 7526 static void 7527 init_kmem_cache_node(struct kmem_cache_node *n) 7528 { 7529 n->nr_partial = 0; 7530 spin_lock_init(&n->list_lock); 7531 INIT_LIST_HEAD(&n->partial); 7532 #ifdef CONFIG_SLUB_DEBUG 7533 atomic_long_set(&n->nr_slabs, 0); 7534 atomic_long_set(&n->total_objects, 0); 7535 INIT_LIST_HEAD(&n->full); 7536 #endif 7537 } 7538 7539 #ifdef CONFIG_SLUB_STATS 7540 static inline int alloc_kmem_cache_stats(struct kmem_cache *s) 7541 { 7542 BUILD_BUG_ON(PERCPU_DYNAMIC_EARLY_SIZE < 7543 NR_KMALLOC_TYPES * KMALLOC_SHIFT_HIGH * 7544 sizeof(struct kmem_cache_stats)); 7545 7546 s->cpu_stats = alloc_percpu(struct kmem_cache_stats); 7547 7548 if (!s->cpu_stats) 7549 return 0; 7550 7551 return 1; 7552 } 7553 #endif 7554 7555 static int init_percpu_sheaves(struct kmem_cache *s) 7556 { 7557 static struct slab_sheaf bootstrap_sheaf = {}; 7558 int cpu; 7559 7560 for_each_possible_cpu(cpu) { 7561 struct slub_percpu_sheaves *pcs; 7562 7563 pcs = per_cpu_ptr(s->cpu_sheaves, cpu); 7564 7565 local_trylock_init(&pcs->lock); 7566 7567 /* 7568 * Bootstrap sheaf has zero size so fast-path allocation fails. 7569 * It has also size == s->sheaf_capacity, so fast-path free 7570 * fails. In the slow paths we recognize the situation by 7571 * checking s->sheaf_capacity. This allows fast paths to assume 7572 * s->cpu_sheaves and pcs->main always exists and are valid. 7573 * It's also safe to share the single static bootstrap_sheaf 7574 * with zero-sized objects array as it's never modified. 7575 * 7576 * Bootstrap_sheaf also has NULL pointer to kmem_cache so we 7577 * recognize it and not attempt to free it when destroying the 7578 * cache. 7579 * 7580 * We keep bootstrap_sheaf for kmem_cache and kmem_cache_node, 7581 * caches with debug enabled, and all caches with SLUB_TINY. 7582 * For kmalloc caches it's used temporarily during the initial 7583 * bootstrap. 7584 */ 7585 if (!s->sheaf_capacity) 7586 pcs->main = &bootstrap_sheaf; 7587 else 7588 pcs->main = alloc_empty_sheaf(s, GFP_KERNEL); 7589 7590 if (!pcs->main) 7591 return -ENOMEM; 7592 } 7593 7594 return 0; 7595 } 7596 7597 static struct kmem_cache *kmem_cache_node; 7598 7599 /* 7600 * No kmalloc_node yet so do it by hand. We know that this is the first 7601 * slab on the node for this slabcache. There are no concurrent accesses 7602 * possible. 7603 * 7604 * Note that this function only works on the kmem_cache_node 7605 * when allocating for the kmem_cache_node. This is used for bootstrapping 7606 * memory on a fresh node that has no slab structures yet. 7607 */ 7608 static void early_kmem_cache_node_alloc(int node) 7609 { 7610 struct slab *slab; 7611 struct kmem_cache_node *n; 7612 7613 BUG_ON(kmem_cache_node->size < sizeof(struct kmem_cache_node)); 7614 7615 slab = new_slab(kmem_cache_node, GFP_NOWAIT, node); 7616 7617 BUG_ON(!slab); 7618 if (slab_nid(slab) != node) { 7619 pr_err("SLUB: Unable to allocate memory from node %d\n", node); 7620 pr_err("SLUB: Allocating a useless per node structure in order to be able to continue\n"); 7621 } 7622 7623 n = slab->freelist; 7624 BUG_ON(!n); 7625 #ifdef CONFIG_SLUB_DEBUG 7626 init_object(kmem_cache_node, n, SLUB_RED_ACTIVE); 7627 #endif 7628 n = kasan_slab_alloc(kmem_cache_node, n, GFP_KERNEL, false); 7629 slab->freelist = get_freepointer(kmem_cache_node, n); 7630 slab->inuse = 1; 7631 kmem_cache_node->per_node[node].node = n; 7632 init_kmem_cache_node(n); 7633 inc_slabs_node(kmem_cache_node, node, slab->objects); 7634 7635 /* 7636 * No locks need to be taken here as it has just been 7637 * initialized and there is no concurrent access. 7638 */ 7639 __add_partial(n, slab, ADD_TO_HEAD); 7640 } 7641 7642 static void free_kmem_cache_nodes(struct kmem_cache *s) 7643 { 7644 int node; 7645 struct kmem_cache_node *n; 7646 7647 for_each_node(node) { 7648 struct node_barn *barn = get_barn_node(s, node); 7649 7650 if (!barn) 7651 continue; 7652 7653 WARN_ON(barn->nr_full); 7654 WARN_ON(barn->nr_empty); 7655 kfree(barn); 7656 s->per_node[node].barn = NULL; 7657 } 7658 7659 for_each_kmem_cache_node(s, node, n) { 7660 s->per_node[node].node = NULL; 7661 kmem_cache_free(kmem_cache_node, n); 7662 } 7663 } 7664 7665 void __kmem_cache_release(struct kmem_cache *s) 7666 { 7667 cache_random_seq_destroy(s); 7668 pcs_destroy(s); 7669 #ifdef CONFIG_SLUB_STATS 7670 free_percpu(s->cpu_stats); 7671 #endif 7672 free_kmem_cache_nodes(s); 7673 } 7674 7675 static int init_kmem_cache_nodes(struct kmem_cache *s) 7676 { 7677 int node; 7678 7679 for_each_node_mask(node, slab_nodes) { 7680 struct kmem_cache_node *n; 7681 7682 if (slab_state == DOWN) { 7683 early_kmem_cache_node_alloc(node); 7684 continue; 7685 } 7686 7687 n = kmem_cache_alloc_node(kmem_cache_node, 7688 GFP_KERNEL, node); 7689 if (!n) 7690 return 0; 7691 7692 init_kmem_cache_node(n); 7693 s->per_node[node].node = n; 7694 } 7695 7696 if (slab_state == DOWN || !cache_has_sheaves(s)) 7697 return 1; 7698 7699 for_each_node_mask(node, slab_barn_nodes) { 7700 struct node_barn *barn; 7701 7702 barn = kmalloc_node(sizeof(*barn), GFP_KERNEL, node); 7703 7704 if (!barn) 7705 return 0; 7706 7707 barn_init(barn); 7708 s->per_node[node].barn = barn; 7709 } 7710 7711 return 1; 7712 } 7713 7714 static unsigned int calculate_sheaf_capacity(struct kmem_cache *s, 7715 struct kmem_cache_args *args) 7716 7717 { 7718 unsigned int capacity; 7719 size_t size; 7720 7721 7722 if (IS_ENABLED(CONFIG_SLUB_TINY) || s->flags & SLAB_DEBUG_FLAGS) 7723 return 0; 7724 7725 /* 7726 * Bootstrap caches can't have sheaves for now (SLAB_NO_OBJ_EXT). 7727 * SLAB_NOLEAKTRACE caches (e.g., kmemleak's object_cache) must not 7728 * have sheaves to avoid recursion when sheaf allocation triggers 7729 * kmemleak tracking. 7730 */ 7731 if (s->flags & (SLAB_NO_OBJ_EXT | SLAB_NOLEAKTRACE)) 7732 return 0; 7733 7734 /* 7735 * For now we use roughly similar formula (divided by two as there are 7736 * two percpu sheaves) as what was used for percpu partial slabs, which 7737 * should result in similar lock contention (barn or list_lock) 7738 */ 7739 if (s->size >= PAGE_SIZE) 7740 capacity = 4; 7741 else if (s->size >= 1024) 7742 capacity = 12; 7743 else if (s->size >= 256) 7744 capacity = 26; 7745 else 7746 capacity = 60; 7747 7748 /* Increment capacity to make sheaf exactly a kmalloc size bucket */ 7749 size = struct_size_t(struct slab_sheaf, objects, capacity); 7750 size = kmalloc_size_roundup(size); 7751 capacity = (size - struct_size_t(struct slab_sheaf, objects, 0)) / sizeof(void *); 7752 7753 /* 7754 * Respect an explicit request for capacity that's typically motivated by 7755 * expected maximum size of kmem_cache_prefill_sheaf() to not end up 7756 * using low-performance oversize sheaves 7757 */ 7758 return max(capacity, args->sheaf_capacity); 7759 } 7760 7761 /* 7762 * calculate_sizes() determines the order and the distribution of data within 7763 * a slab object. 7764 */ 7765 static int calculate_sizes(struct kmem_cache_args *args, struct kmem_cache *s) 7766 { 7767 slab_flags_t flags = s->flags; 7768 unsigned int size = s->object_size; 7769 unsigned int aligned_size; 7770 unsigned int order; 7771 7772 /* 7773 * Round up object size to the next word boundary. We can only 7774 * place the free pointer at word boundaries and this determines 7775 * the possible location of the free pointer. 7776 */ 7777 size = ALIGN(size, sizeof(void *)); 7778 7779 #ifdef CONFIG_SLUB_DEBUG 7780 /* 7781 * Determine if we can poison the object itself. If the user of 7782 * the slab may touch the object after free or before allocation 7783 * then we should never poison the object itself. 7784 */ 7785 if ((flags & SLAB_POISON) && !(flags & SLAB_TYPESAFE_BY_RCU) && 7786 !s->ctor) 7787 s->flags |= __OBJECT_POISON; 7788 else 7789 s->flags &= ~__OBJECT_POISON; 7790 7791 7792 /* 7793 * If we are Redzoning and there is no space between the end of the 7794 * object and the following fields, add one word so the right Redzone 7795 * is non-empty. 7796 */ 7797 if ((flags & SLAB_RED_ZONE) && size == s->object_size) 7798 size += sizeof(void *); 7799 #endif 7800 7801 /* 7802 * With that we have determined the number of bytes in actual use 7803 * by the object and redzoning. 7804 */ 7805 s->inuse = size; 7806 7807 if (((flags & SLAB_TYPESAFE_BY_RCU) && !args->use_freeptr_offset) || 7808 (flags & SLAB_POISON) || 7809 (s->ctor && !args->use_freeptr_offset) || 7810 ((flags & SLAB_RED_ZONE) && 7811 (s->object_size < sizeof(void *) || slub_debug_orig_size(s)))) { 7812 /* 7813 * Relocate free pointer after the object if it is not 7814 * permitted to overwrite the first word of the object on 7815 * kmem_cache_free. 7816 * 7817 * This is the case if we do RCU, have a constructor, are 7818 * poisoning the objects, or are redzoning an object smaller 7819 * than sizeof(void *) or are redzoning an object with 7820 * slub_debug_orig_size() enabled, in which case the right 7821 * redzone may be extended. 7822 * 7823 * The assumption that s->offset >= s->inuse means free 7824 * pointer is outside of the object is used in the 7825 * freeptr_outside_object() function. If that is no 7826 * longer true, the function needs to be modified. 7827 */ 7828 s->offset = size; 7829 size += sizeof(void *); 7830 } else if (((flags & SLAB_TYPESAFE_BY_RCU) || s->ctor) && 7831 args->use_freeptr_offset) { 7832 s->offset = args->freeptr_offset; 7833 } else { 7834 /* 7835 * Store freelist pointer near middle of object to keep 7836 * it away from the edges of the object to avoid small 7837 * sized over/underflows from neighboring allocations. 7838 */ 7839 s->offset = ALIGN_DOWN(s->object_size / 2, sizeof(void *)); 7840 } 7841 7842 #ifdef CONFIG_SLUB_DEBUG 7843 if (flags & SLAB_STORE_USER) { 7844 /* 7845 * Need to store information about allocs and frees after 7846 * the object. 7847 */ 7848 size += 2 * sizeof(struct track); 7849 7850 /* Save the original kmalloc request size */ 7851 if (flags & SLAB_KMALLOC) 7852 size += sizeof(unsigned long); 7853 } 7854 #endif 7855 7856 kasan_cache_create(s, &size, &s->flags); 7857 #ifdef CONFIG_SLUB_DEBUG 7858 if (flags & SLAB_RED_ZONE) { 7859 /* 7860 * Add some empty padding so that we can catch 7861 * overwrites from earlier objects rather than let 7862 * tracking information or the free pointer be 7863 * corrupted if a user writes before the start 7864 * of the object. 7865 */ 7866 size += sizeof(void *); 7867 7868 s->red_left_pad = sizeof(void *); 7869 s->red_left_pad = ALIGN(s->red_left_pad, s->align); 7870 size += s->red_left_pad; 7871 } 7872 #endif 7873 7874 /* 7875 * SLUB stores one object immediately after another beginning from 7876 * offset 0. In order to align the objects we have to simply size 7877 * each object to conform to the alignment. 7878 */ 7879 aligned_size = ALIGN(size, s->align); 7880 #if defined(CONFIG_SLAB_OBJ_EXT) && defined(CONFIG_64BIT) 7881 if (slab_args_unmergeable(args, s->flags) && 7882 (aligned_size - size >= sizeof(struct slabobj_ext))) 7883 s->flags |= SLAB_OBJ_EXT_IN_OBJ; 7884 #endif 7885 size = aligned_size; 7886 7887 s->size = size; 7888 s->reciprocal_size = reciprocal_value(size); 7889 order = calculate_order(size); 7890 7891 if ((int)order < 0) 7892 return 0; 7893 7894 s->allocflags = __GFP_COMP; 7895 7896 if (s->flags & SLAB_CACHE_DMA) 7897 s->allocflags |= GFP_DMA; 7898 7899 if (s->flags & SLAB_CACHE_DMA32) 7900 s->allocflags |= GFP_DMA32; 7901 7902 if (s->flags & SLAB_RECLAIM_ACCOUNT) 7903 s->allocflags |= __GFP_RECLAIMABLE; 7904 7905 /* 7906 * For KMALLOC_NORMAL caches we enable sheaves later by 7907 * bootstrap_kmalloc_sheaves() to avoid recursion 7908 */ 7909 if (!is_kmalloc_normal(s)) 7910 s->sheaf_capacity = calculate_sheaf_capacity(s, args); 7911 7912 /* 7913 * Determine the number of objects per slab 7914 */ 7915 s->oo = oo_make(order, size); 7916 s->min = oo_make(get_order(size), size); 7917 7918 return !!oo_objects(s->oo); 7919 } 7920 7921 static void list_slab_objects(struct kmem_cache *s, struct slab *slab) 7922 { 7923 #ifdef CONFIG_SLUB_DEBUG 7924 void *addr = slab_address(slab); 7925 void *p; 7926 7927 if (!slab_add_kunit_errors()) 7928 slab_bug(s, "Objects remaining on __kmem_cache_shutdown()"); 7929 7930 spin_lock(&object_map_lock); 7931 __fill_map(object_map, s, slab); 7932 7933 for_each_object(p, s, addr, slab->objects) { 7934 7935 if (!test_bit(__obj_to_index(s, addr, p), object_map)) { 7936 if (slab_add_kunit_errors()) 7937 continue; 7938 pr_err("Object 0x%p @offset=%tu\n", p, p - addr); 7939 print_tracking(s, p); 7940 } 7941 } 7942 spin_unlock(&object_map_lock); 7943 7944 __slab_err(slab); 7945 #endif 7946 } 7947 7948 /* 7949 * Attempt to free all partial slabs on a node. 7950 * This is called from __kmem_cache_shutdown(). We must take list_lock 7951 * because sysfs file might still access partial list after the shutdowning. 7952 */ 7953 static void free_partial(struct kmem_cache *s, struct kmem_cache_node *n) 7954 { 7955 LIST_HEAD(discard); 7956 struct slab *slab, *h; 7957 7958 BUG_ON(irqs_disabled()); 7959 spin_lock_irq(&n->list_lock); 7960 list_for_each_entry_safe(slab, h, &n->partial, slab_list) { 7961 if (!slab->inuse) { 7962 remove_partial(n, slab); 7963 list_add(&slab->slab_list, &discard); 7964 } else { 7965 list_slab_objects(s, slab); 7966 } 7967 } 7968 spin_unlock_irq(&n->list_lock); 7969 7970 list_for_each_entry_safe(slab, h, &discard, slab_list) 7971 discard_slab(s, slab); 7972 } 7973 7974 bool __kmem_cache_empty(struct kmem_cache *s) 7975 { 7976 int node; 7977 struct kmem_cache_node *n; 7978 7979 for_each_kmem_cache_node(s, node, n) 7980 if (n->nr_partial || node_nr_slabs(n)) 7981 return false; 7982 return true; 7983 } 7984 7985 /* 7986 * Release all resources used by a slab cache. 7987 */ 7988 int __kmem_cache_shutdown(struct kmem_cache *s) 7989 { 7990 int node; 7991 struct kmem_cache_node *n; 7992 7993 flush_all_cpus_locked(s); 7994 7995 /* we might have rcu sheaves in flight */ 7996 if (cache_has_sheaves(s)) 7997 rcu_barrier(); 7998 7999 for_each_node(node) { 8000 struct node_barn *barn = get_barn_node(s, node); 8001 8002 if (barn) 8003 barn_shrink(s, barn); 8004 } 8005 8006 /* Attempt to free all objects */ 8007 for_each_kmem_cache_node(s, node, n) { 8008 free_partial(s, n); 8009 if (n->nr_partial || node_nr_slabs(n)) 8010 return 1; 8011 } 8012 return 0; 8013 } 8014 8015 #ifdef CONFIG_PRINTK 8016 void __kmem_obj_info(struct kmem_obj_info *kpp, void *object, struct slab *slab) 8017 { 8018 void *base; 8019 int __maybe_unused i; 8020 unsigned int objnr; 8021 void *objp; 8022 void *objp0; 8023 struct kmem_cache *s = slab->slab_cache; 8024 struct track __maybe_unused *trackp; 8025 8026 kpp->kp_ptr = object; 8027 kpp->kp_slab = slab; 8028 kpp->kp_slab_cache = s; 8029 base = slab_address(slab); 8030 objp0 = kasan_reset_tag(object); 8031 #ifdef CONFIG_SLUB_DEBUG 8032 objp = restore_red_left(s, objp0); 8033 #else 8034 objp = objp0; 8035 #endif 8036 objnr = obj_to_index(s, slab, objp); 8037 kpp->kp_data_offset = (unsigned long)((char *)objp0 - (char *)objp); 8038 objp = base + s->size * objnr; 8039 kpp->kp_objp = objp; 8040 if (WARN_ON_ONCE(objp < base || objp >= base + slab->objects * s->size 8041 || (objp - base) % s->size) || 8042 !(s->flags & SLAB_STORE_USER)) 8043 return; 8044 #ifdef CONFIG_SLUB_DEBUG 8045 objp = fixup_red_left(s, objp); 8046 trackp = get_track(s, objp, TRACK_ALLOC); 8047 kpp->kp_ret = (void *)trackp->addr; 8048 #ifdef CONFIG_STACKDEPOT 8049 { 8050 depot_stack_handle_t handle; 8051 unsigned long *entries; 8052 unsigned int nr_entries; 8053 8054 handle = READ_ONCE(trackp->handle); 8055 if (handle) { 8056 nr_entries = stack_depot_fetch(handle, &entries); 8057 for (i = 0; i < KS_ADDRS_COUNT && i < nr_entries; i++) 8058 kpp->kp_stack[i] = (void *)entries[i]; 8059 } 8060 8061 trackp = get_track(s, objp, TRACK_FREE); 8062 handle = READ_ONCE(trackp->handle); 8063 if (handle) { 8064 nr_entries = stack_depot_fetch(handle, &entries); 8065 for (i = 0; i < KS_ADDRS_COUNT && i < nr_entries; i++) 8066 kpp->kp_free_stack[i] = (void *)entries[i]; 8067 } 8068 } 8069 #endif 8070 #endif 8071 } 8072 #endif 8073 8074 /******************************************************************** 8075 * Kmalloc subsystem 8076 *******************************************************************/ 8077 8078 static int __init setup_slub_min_order(const char *str, const struct kernel_param *kp) 8079 { 8080 int ret; 8081 8082 ret = kstrtouint(str, 0, &slub_min_order); 8083 if (ret) 8084 return ret; 8085 8086 if (slub_min_order > slub_max_order) 8087 slub_max_order = slub_min_order; 8088 8089 return 0; 8090 } 8091 8092 static const struct kernel_param_ops param_ops_slab_min_order __initconst = { 8093 .set = setup_slub_min_order, 8094 }; 8095 __core_param_cb(slab_min_order, ¶m_ops_slab_min_order, &slub_min_order, 0); 8096 __core_param_cb(slub_min_order, ¶m_ops_slab_min_order, &slub_min_order, 0); 8097 8098 static int __init setup_slub_max_order(const char *str, const struct kernel_param *kp) 8099 { 8100 int ret; 8101 8102 ret = kstrtouint(str, 0, &slub_max_order); 8103 if (ret) 8104 return ret; 8105 8106 slub_max_order = min_t(unsigned int, slub_max_order, MAX_PAGE_ORDER); 8107 8108 if (slub_min_order > slub_max_order) 8109 slub_min_order = slub_max_order; 8110 8111 return 0; 8112 } 8113 8114 static const struct kernel_param_ops param_ops_slab_max_order __initconst = { 8115 .set = setup_slub_max_order, 8116 }; 8117 __core_param_cb(slab_max_order, ¶m_ops_slab_max_order, &slub_max_order, 0); 8118 __core_param_cb(slub_max_order, ¶m_ops_slab_max_order, &slub_max_order, 0); 8119 8120 core_param(slab_min_objects, slub_min_objects, uint, 0); 8121 core_param(slub_min_objects, slub_min_objects, uint, 0); 8122 8123 #ifdef CONFIG_NUMA 8124 static int __init setup_slab_strict_numa(const char *str, const struct kernel_param *kp) 8125 { 8126 if (nr_node_ids > 1) { 8127 static_branch_enable(&strict_numa); 8128 pr_info("SLUB: Strict NUMA enabled.\n"); 8129 } else { 8130 pr_warn("slab_strict_numa parameter set on non NUMA system.\n"); 8131 } 8132 8133 return 0; 8134 } 8135 8136 static const struct kernel_param_ops param_ops_slab_strict_numa __initconst = { 8137 .flags = KERNEL_PARAM_OPS_FL_NOARG, 8138 .set = setup_slab_strict_numa, 8139 }; 8140 __core_param_cb(slab_strict_numa, ¶m_ops_slab_strict_numa, NULL, 0); 8141 #endif 8142 8143 8144 #ifdef CONFIG_HARDENED_USERCOPY 8145 /* 8146 * Rejects incorrectly sized objects and objects that are to be copied 8147 * to/from userspace but do not fall entirely within the containing slab 8148 * cache's usercopy region. 8149 * 8150 * Returns NULL if check passes, otherwise const char * to name of cache 8151 * to indicate an error. 8152 */ 8153 void __check_heap_object(const void *ptr, unsigned long n, 8154 const struct slab *slab, bool to_user) 8155 { 8156 struct kmem_cache *s; 8157 unsigned int offset; 8158 bool is_kfence = is_kfence_address(ptr); 8159 8160 ptr = kasan_reset_tag(ptr); 8161 8162 /* Find object and usable object size. */ 8163 s = slab->slab_cache; 8164 8165 /* Reject impossible pointers. */ 8166 if (ptr < slab_address(slab)) 8167 usercopy_abort("SLUB object not in SLUB page?!", NULL, 8168 to_user, 0, n); 8169 8170 /* Find offset within object. */ 8171 if (is_kfence) 8172 offset = ptr - kfence_object_start(ptr); 8173 else 8174 offset = (ptr - slab_address(slab)) % s->size; 8175 8176 /* Adjust for redzone and reject if within the redzone. */ 8177 if (!is_kfence && kmem_cache_debug_flags(s, SLAB_RED_ZONE)) { 8178 if (offset < s->red_left_pad) 8179 usercopy_abort("SLUB object in left red zone", 8180 s->name, to_user, offset, n); 8181 offset -= s->red_left_pad; 8182 } 8183 8184 /* Allow address range falling entirely within usercopy region. */ 8185 if (offset >= s->useroffset && 8186 offset - s->useroffset <= s->usersize && 8187 n <= s->useroffset - offset + s->usersize) 8188 return; 8189 8190 usercopy_abort("SLUB object", s->name, to_user, offset, n); 8191 } 8192 #endif /* CONFIG_HARDENED_USERCOPY */ 8193 8194 #define SHRINK_PROMOTE_MAX 32 8195 8196 /* 8197 * kmem_cache_shrink discards empty slabs and promotes the slabs filled 8198 * up most to the head of the partial lists. New allocations will then 8199 * fill those up and thus they can be removed from the partial lists. 8200 * 8201 * The slabs with the least items are placed last. This results in them 8202 * being allocated from last increasing the chance that the last objects 8203 * are freed in them. 8204 */ 8205 static int __kmem_cache_do_shrink(struct kmem_cache *s) 8206 { 8207 int node; 8208 int i; 8209 struct kmem_cache_node *n; 8210 struct slab *slab; 8211 struct slab *t; 8212 struct list_head discard; 8213 struct list_head promote[SHRINK_PROMOTE_MAX]; 8214 unsigned long flags; 8215 int ret = 0; 8216 8217 for_each_node(node) { 8218 struct node_barn *barn = get_barn_node(s, node); 8219 8220 if (barn) 8221 barn_shrink(s, barn); 8222 } 8223 8224 for_each_kmem_cache_node(s, node, n) { 8225 INIT_LIST_HEAD(&discard); 8226 for (i = 0; i < SHRINK_PROMOTE_MAX; i++) 8227 INIT_LIST_HEAD(promote + i); 8228 8229 spin_lock_irqsave(&n->list_lock, flags); 8230 8231 /* 8232 * Build lists of slabs to discard or promote. 8233 * 8234 * Note that concurrent frees may occur while we hold the 8235 * list_lock. slab->inuse here is the upper limit. 8236 */ 8237 list_for_each_entry_safe(slab, t, &n->partial, slab_list) { 8238 int free = slab->objects - slab->inuse; 8239 8240 /* Do not reread slab->inuse */ 8241 barrier(); 8242 8243 /* We do not keep full slabs on the list */ 8244 BUG_ON(free <= 0); 8245 8246 if (free == slab->objects) { 8247 list_move(&slab->slab_list, &discard); 8248 slab_clear_node_partial(slab); 8249 n->nr_partial--; 8250 dec_slabs_node(s, node, slab->objects); 8251 } else if (free <= SHRINK_PROMOTE_MAX) 8252 list_move(&slab->slab_list, promote + free - 1); 8253 } 8254 8255 /* 8256 * Promote the slabs filled up most to the head of the 8257 * partial list. 8258 */ 8259 for (i = SHRINK_PROMOTE_MAX - 1; i >= 0; i--) 8260 list_splice(promote + i, &n->partial); 8261 8262 spin_unlock_irqrestore(&n->list_lock, flags); 8263 8264 /* Release empty slabs */ 8265 list_for_each_entry_safe(slab, t, &discard, slab_list) 8266 free_slab(s, slab); 8267 8268 if (node_nr_slabs(n)) 8269 ret = 1; 8270 } 8271 8272 return ret; 8273 } 8274 8275 int __kmem_cache_shrink(struct kmem_cache *s) 8276 { 8277 flush_all(s); 8278 return __kmem_cache_do_shrink(s); 8279 } 8280 8281 static int slab_mem_going_offline_callback(void) 8282 { 8283 struct kmem_cache *s; 8284 8285 mutex_lock(&slab_mutex); 8286 list_for_each_entry(s, &slab_caches, list) { 8287 flush_all_cpus_locked(s); 8288 __kmem_cache_do_shrink(s); 8289 } 8290 mutex_unlock(&slab_mutex); 8291 8292 return 0; 8293 } 8294 8295 static int slab_mem_going_online_callback(int nid) 8296 { 8297 struct kmem_cache_node *n; 8298 struct kmem_cache *s; 8299 int ret = 0; 8300 8301 /* 8302 * We are bringing a node online. No memory is available yet. We must 8303 * allocate a kmem_cache_node structure in order to bring the node 8304 * online. 8305 */ 8306 mutex_lock(&slab_mutex); 8307 list_for_each_entry(s, &slab_caches, list) { 8308 struct node_barn *barn = NULL; 8309 8310 /* 8311 * The structure may already exist if the node was previously 8312 * onlined and offlined. 8313 */ 8314 if (get_node(s, nid)) 8315 continue; 8316 8317 if (cache_has_sheaves(s) && !get_barn_node(s, nid)) { 8318 8319 barn = kmalloc_node(sizeof(*barn), GFP_KERNEL, nid); 8320 8321 if (!barn) { 8322 ret = -ENOMEM; 8323 goto out; 8324 } 8325 } 8326 8327 /* 8328 * XXX: kmem_cache_alloc_node will fallback to other nodes 8329 * since memory is not yet available from the node that 8330 * is brought up. 8331 */ 8332 n = kmem_cache_alloc(kmem_cache_node, GFP_KERNEL); 8333 if (!n) { 8334 kfree(barn); 8335 ret = -ENOMEM; 8336 goto out; 8337 } 8338 8339 init_kmem_cache_node(n); 8340 s->per_node[nid].node = n; 8341 8342 if (barn) { 8343 barn_init(barn); 8344 s->per_node[nid].barn = barn; 8345 } 8346 } 8347 /* 8348 * Any cache created after this point will also have kmem_cache_node 8349 * and barn initialized for the new node. 8350 */ 8351 node_set(nid, slab_nodes); 8352 node_set(nid, slab_barn_nodes); 8353 out: 8354 mutex_unlock(&slab_mutex); 8355 return ret; 8356 } 8357 8358 static int slab_memory_callback(struct notifier_block *self, 8359 unsigned long action, void *arg) 8360 { 8361 struct node_notify *nn = arg; 8362 int nid = nn->nid; 8363 int ret = 0; 8364 8365 switch (action) { 8366 case NODE_ADDING_FIRST_MEMORY: 8367 ret = slab_mem_going_online_callback(nid); 8368 break; 8369 case NODE_REMOVING_LAST_MEMORY: 8370 ret = slab_mem_going_offline_callback(); 8371 break; 8372 } 8373 if (ret) 8374 ret = notifier_from_errno(ret); 8375 else 8376 ret = NOTIFY_OK; 8377 return ret; 8378 } 8379 8380 /******************************************************************** 8381 * Basic setup of slabs 8382 *******************************************************************/ 8383 8384 /* 8385 * Used for early kmem_cache structures that were allocated using 8386 * the page allocator. Allocate them properly then fix up the pointers 8387 * that may be pointing to the wrong kmem_cache structure. 8388 */ 8389 8390 static struct kmem_cache * __init bootstrap(struct kmem_cache *static_cache) 8391 { 8392 int node; 8393 struct kmem_cache *s = kmem_cache_zalloc(kmem_cache, GFP_NOWAIT); 8394 struct kmem_cache_node *n; 8395 8396 memcpy(s, static_cache, kmem_cache->object_size); 8397 8398 for_each_kmem_cache_node(s, node, n) { 8399 struct slab *p; 8400 8401 list_for_each_entry(p, &n->partial, slab_list) 8402 p->slab_cache = s; 8403 8404 #ifdef CONFIG_SLUB_DEBUG 8405 list_for_each_entry(p, &n->full, slab_list) 8406 p->slab_cache = s; 8407 #endif 8408 } 8409 list_add(&s->list, &slab_caches); 8410 return s; 8411 } 8412 8413 /* 8414 * Finish the sheaves initialization done normally by init_percpu_sheaves() and 8415 * init_kmem_cache_nodes(). For normal kmalloc caches we have to bootstrap it 8416 * since sheaves and barns are allocated by kmalloc. 8417 */ 8418 static void __init bootstrap_cache_sheaves(struct kmem_cache *s) 8419 { 8420 struct kmem_cache_args empty_args = {}; 8421 unsigned int capacity; 8422 bool failed = false; 8423 int node, cpu; 8424 8425 capacity = calculate_sheaf_capacity(s, &empty_args); 8426 8427 /* capacity can be 0 due to debugging or SLUB_TINY */ 8428 if (!capacity) 8429 return; 8430 8431 for_each_node_mask(node, slab_barn_nodes) { 8432 struct node_barn *barn; 8433 8434 barn = kmalloc_node(sizeof(*barn), GFP_KERNEL, node); 8435 8436 if (!barn) { 8437 failed = true; 8438 goto out; 8439 } 8440 8441 barn_init(barn); 8442 s->per_node[node].barn = barn; 8443 } 8444 8445 for_each_possible_cpu(cpu) { 8446 struct slub_percpu_sheaves *pcs; 8447 8448 pcs = per_cpu_ptr(s->cpu_sheaves, cpu); 8449 8450 pcs->main = __alloc_empty_sheaf(s, GFP_KERNEL, capacity); 8451 8452 if (!pcs->main) { 8453 failed = true; 8454 break; 8455 } 8456 } 8457 8458 out: 8459 /* 8460 * It's still early in boot so treat this like same as a failure to 8461 * create the kmalloc cache in the first place 8462 */ 8463 if (failed) 8464 panic("Out of memory when creating kmem_cache %s\n", s->name); 8465 8466 s->sheaf_capacity = capacity; 8467 } 8468 8469 static void __init bootstrap_kmalloc_sheaves(void) 8470 { 8471 enum kmalloc_cache_type type; 8472 8473 for (type = KMALLOC_NORMAL; type <= KMALLOC_RANDOM_END; type++) { 8474 for (int idx = 0; idx < KMALLOC_SHIFT_HIGH + 1; idx++) { 8475 if (kmalloc_caches[type][idx]) 8476 bootstrap_cache_sheaves(kmalloc_caches[type][idx]); 8477 } 8478 } 8479 } 8480 8481 void __init kmem_cache_init(void) 8482 { 8483 static __initdata struct kmem_cache boot_kmem_cache, 8484 boot_kmem_cache_node; 8485 int node; 8486 8487 if (debug_guardpage_minorder()) 8488 slub_max_order = 0; 8489 8490 /* Inform pointer hashing choice about slub debugging state. */ 8491 hash_pointers_finalize(__slub_debug_enabled()); 8492 8493 kmem_cache_node = &boot_kmem_cache_node; 8494 kmem_cache = &boot_kmem_cache; 8495 8496 /* 8497 * Initialize the nodemask for which we will allocate per node 8498 * structures. Here we don't need taking slab_mutex yet. 8499 */ 8500 for_each_node_state(node, N_MEMORY) 8501 node_set(node, slab_nodes); 8502 8503 for_each_online_node(node) 8504 node_set(node, slab_barn_nodes); 8505 8506 create_boot_cache(kmem_cache_node, "kmem_cache_node", 8507 sizeof(struct kmem_cache_node), 8508 SLAB_HWCACHE_ALIGN | SLAB_NO_OBJ_EXT, 0, 0); 8509 8510 hotplug_node_notifier(slab_memory_callback, SLAB_CALLBACK_PRI); 8511 8512 /* Able to allocate the per node structures */ 8513 slab_state = PARTIAL; 8514 8515 create_boot_cache(kmem_cache, "kmem_cache", 8516 offsetof(struct kmem_cache, per_node) + 8517 nr_node_ids * sizeof(struct kmem_cache_per_node_ptrs), 8518 SLAB_HWCACHE_ALIGN | SLAB_NO_OBJ_EXT, 0, 0); 8519 8520 kmem_cache = bootstrap(&boot_kmem_cache); 8521 kmem_cache_node = bootstrap(&boot_kmem_cache_node); 8522 8523 /* Now we can use the kmem_cache to allocate kmalloc slabs */ 8524 setup_kmalloc_cache_index_table(); 8525 create_kmalloc_caches(); 8526 8527 bootstrap_kmalloc_sheaves(); 8528 8529 /* Setup random freelists for each cache */ 8530 init_freelist_randomization(); 8531 8532 cpuhp_setup_state_nocalls(CPUHP_SLUB_DEAD, "slub:dead", slub_cpu_setup, 8533 slub_cpu_dead); 8534 8535 pr_info("SLUB: HWalign=%d, Order=%u-%u, MinObjects=%u, CPUs=%u, Nodes=%u\n", 8536 cache_line_size(), 8537 slub_min_order, slub_max_order, slub_min_objects, 8538 nr_cpu_ids, nr_node_ids); 8539 } 8540 8541 void __init kmem_cache_init_late(void) 8542 { 8543 flushwq = alloc_workqueue("slub_flushwq", WQ_MEM_RECLAIM | WQ_PERCPU, 8544 0); 8545 WARN_ON(!flushwq); 8546 #ifdef CONFIG_SLAB_FREELIST_RANDOM 8547 prandom_init_once(&slab_rnd_state); 8548 #endif 8549 } 8550 8551 int do_kmem_cache_create(struct kmem_cache *s, const char *name, 8552 unsigned int size, struct kmem_cache_args *args, 8553 slab_flags_t flags) 8554 { 8555 int err = -EINVAL; 8556 8557 s->name = name; 8558 s->size = s->object_size = size; 8559 8560 s->flags = kmem_cache_flags(flags, s->name); 8561 #ifdef CONFIG_SLAB_FREELIST_HARDENED 8562 s->random = get_random_long(); 8563 #endif 8564 s->align = args->align; 8565 s->ctor = args->ctor; 8566 #ifdef CONFIG_HARDENED_USERCOPY 8567 s->useroffset = args->useroffset; 8568 s->usersize = args->usersize; 8569 #endif 8570 8571 if (!calculate_sizes(args, s)) 8572 goto out; 8573 if (disable_higher_order_debug) { 8574 /* 8575 * Disable debugging flags that store metadata if the min slab 8576 * order increased. 8577 */ 8578 if (get_order(s->size) > get_order(s->object_size)) { 8579 s->flags &= ~DEBUG_METADATA_FLAGS; 8580 s->offset = 0; 8581 if (!calculate_sizes(args, s)) 8582 goto out; 8583 } 8584 } 8585 8586 #ifdef system_has_freelist_aba 8587 if (system_has_freelist_aba() && !(s->flags & SLAB_NO_CMPXCHG)) { 8588 /* Enable fast mode */ 8589 s->flags |= __CMPXCHG_DOUBLE; 8590 } 8591 #endif 8592 8593 /* 8594 * The larger the object size is, the more slabs we want on the partial 8595 * list to avoid pounding the page allocator excessively. 8596 */ 8597 s->min_partial = min_t(unsigned long, MAX_PARTIAL, ilog2(s->size) / 2); 8598 s->min_partial = max_t(unsigned long, MIN_PARTIAL, s->min_partial); 8599 8600 s->cpu_sheaves = alloc_percpu(struct slub_percpu_sheaves); 8601 if (!s->cpu_sheaves) { 8602 err = -ENOMEM; 8603 goto out; 8604 } 8605 8606 #ifdef CONFIG_NUMA 8607 s->remote_node_defrag_ratio = 1000; 8608 #endif 8609 8610 /* Initialize the pre-computed randomized freelist if slab is up */ 8611 if (slab_state >= UP) { 8612 if (init_cache_random_seq(s)) 8613 goto out; 8614 } 8615 8616 if (!init_kmem_cache_nodes(s)) 8617 goto out; 8618 8619 #ifdef CONFIG_SLUB_STATS 8620 if (!alloc_kmem_cache_stats(s)) 8621 goto out; 8622 #endif 8623 8624 err = init_percpu_sheaves(s); 8625 if (err) 8626 goto out; 8627 8628 err = 0; 8629 8630 /* Mutex is not taken during early boot */ 8631 if (slab_state <= UP) 8632 goto out; 8633 8634 /* 8635 * Failing to create sysfs files is not critical to SLUB functionality. 8636 * If it fails, proceed with cache creation without these files. 8637 */ 8638 if (sysfs_slab_add(s)) 8639 pr_err("SLUB: Unable to add cache %s to sysfs\n", s->name); 8640 8641 if (s->flags & SLAB_STORE_USER) 8642 debugfs_slab_add(s); 8643 8644 out: 8645 if (err) 8646 __kmem_cache_release(s); 8647 return err; 8648 } 8649 8650 #ifdef SLAB_SUPPORTS_SYSFS 8651 static int count_inuse(struct slab *slab) 8652 { 8653 return slab->inuse; 8654 } 8655 8656 static int count_total(struct slab *slab) 8657 { 8658 return slab->objects; 8659 } 8660 #endif 8661 8662 #ifdef CONFIG_SLUB_DEBUG 8663 static void validate_slab(struct kmem_cache *s, struct slab *slab, 8664 unsigned long *obj_map) 8665 { 8666 void *p; 8667 void *addr = slab_address(slab); 8668 8669 if (!validate_slab_ptr(slab)) { 8670 slab_err(s, slab, "Not a valid slab page"); 8671 return; 8672 } 8673 8674 if (!check_slab(s, slab) || !on_freelist(s, slab, NULL)) 8675 return; 8676 8677 /* Now we know that a valid freelist exists */ 8678 __fill_map(obj_map, s, slab); 8679 for_each_object(p, s, addr, slab->objects) { 8680 u8 val = test_bit(__obj_to_index(s, addr, p), obj_map) ? 8681 SLUB_RED_INACTIVE : SLUB_RED_ACTIVE; 8682 8683 if (!check_object(s, slab, p, val)) 8684 break; 8685 } 8686 } 8687 8688 static int validate_slab_node(struct kmem_cache *s, 8689 struct kmem_cache_node *n, unsigned long *obj_map) 8690 { 8691 unsigned long count = 0; 8692 struct slab *slab; 8693 unsigned long flags; 8694 8695 spin_lock_irqsave(&n->list_lock, flags); 8696 8697 list_for_each_entry(slab, &n->partial, slab_list) { 8698 validate_slab(s, slab, obj_map); 8699 count++; 8700 } 8701 if (count != n->nr_partial) { 8702 pr_err("SLUB %s: %ld partial slabs counted but counter=%ld\n", 8703 s->name, count, n->nr_partial); 8704 slab_add_kunit_errors(); 8705 } 8706 8707 if (!(s->flags & SLAB_STORE_USER)) 8708 goto out; 8709 8710 list_for_each_entry(slab, &n->full, slab_list) { 8711 validate_slab(s, slab, obj_map); 8712 count++; 8713 } 8714 if (count != node_nr_slabs(n)) { 8715 pr_err("SLUB: %s %ld slabs counted but counter=%ld\n", 8716 s->name, count, node_nr_slabs(n)); 8717 slab_add_kunit_errors(); 8718 } 8719 8720 out: 8721 spin_unlock_irqrestore(&n->list_lock, flags); 8722 return count; 8723 } 8724 8725 long validate_slab_cache(struct kmem_cache *s) 8726 { 8727 int node; 8728 unsigned long count = 0; 8729 struct kmem_cache_node *n; 8730 unsigned long *obj_map; 8731 8732 obj_map = bitmap_alloc(oo_objects(s->oo), GFP_KERNEL); 8733 if (!obj_map) 8734 return -ENOMEM; 8735 8736 flush_all(s); 8737 for_each_kmem_cache_node(s, node, n) 8738 count += validate_slab_node(s, n, obj_map); 8739 8740 bitmap_free(obj_map); 8741 8742 return count; 8743 } 8744 EXPORT_SYMBOL(validate_slab_cache); 8745 8746 #ifdef CONFIG_DEBUG_FS 8747 /* 8748 * Generate lists of code addresses where slabcache objects are allocated 8749 * and freed. 8750 */ 8751 8752 struct location { 8753 depot_stack_handle_t handle; 8754 unsigned long count; 8755 unsigned long addr; 8756 unsigned long waste; 8757 long long sum_time; 8758 long min_time; 8759 long max_time; 8760 long min_pid; 8761 long max_pid; 8762 DECLARE_BITMAP(cpus, NR_CPUS); 8763 nodemask_t nodes; 8764 }; 8765 8766 struct loc_track { 8767 unsigned long max; 8768 unsigned long count; 8769 struct location *loc; 8770 loff_t idx; 8771 }; 8772 8773 static struct dentry *slab_debugfs_root; 8774 8775 static void free_loc_track(struct loc_track *t) 8776 { 8777 if (t->max) 8778 free_pages((unsigned long)t->loc, 8779 get_order(sizeof(struct location) * t->max)); 8780 } 8781 8782 static int alloc_loc_track(struct loc_track *t, unsigned long max, gfp_t flags) 8783 { 8784 struct location *l; 8785 int order; 8786 8787 order = get_order(sizeof(struct location) * max); 8788 8789 l = (void *)__get_free_pages(flags, order); 8790 if (!l) 8791 return 0; 8792 8793 if (t->count) { 8794 memcpy(l, t->loc, sizeof(struct location) * t->count); 8795 free_loc_track(t); 8796 } 8797 t->max = max; 8798 t->loc = l; 8799 return 1; 8800 } 8801 8802 static int add_location(struct loc_track *t, struct kmem_cache *s, 8803 const struct track *track, 8804 unsigned int orig_size) 8805 { 8806 long start, end, pos; 8807 struct location *l; 8808 unsigned long caddr, chandle, cwaste; 8809 unsigned long age = jiffies - track->when; 8810 depot_stack_handle_t handle = 0; 8811 unsigned int waste = s->object_size - orig_size; 8812 8813 #ifdef CONFIG_STACKDEPOT 8814 handle = READ_ONCE(track->handle); 8815 #endif 8816 start = -1; 8817 end = t->count; 8818 8819 for ( ; ; ) { 8820 pos = start + (end - start + 1) / 2; 8821 8822 /* 8823 * There is nothing at "end". If we end up there 8824 * we need to add something to before end. 8825 */ 8826 if (pos == end) 8827 break; 8828 8829 l = &t->loc[pos]; 8830 caddr = l->addr; 8831 chandle = l->handle; 8832 cwaste = l->waste; 8833 if ((track->addr == caddr) && (handle == chandle) && 8834 (waste == cwaste)) { 8835 8836 l->count++; 8837 if (track->when) { 8838 l->sum_time += age; 8839 if (age < l->min_time) 8840 l->min_time = age; 8841 if (age > l->max_time) 8842 l->max_time = age; 8843 8844 if (track->pid < l->min_pid) 8845 l->min_pid = track->pid; 8846 if (track->pid > l->max_pid) 8847 l->max_pid = track->pid; 8848 8849 cpumask_set_cpu(track->cpu, 8850 to_cpumask(l->cpus)); 8851 } 8852 node_set(page_to_nid(virt_to_page(track)), l->nodes); 8853 return 1; 8854 } 8855 8856 if (track->addr < caddr) 8857 end = pos; 8858 else if (track->addr == caddr && handle < chandle) 8859 end = pos; 8860 else if (track->addr == caddr && handle == chandle && 8861 waste < cwaste) 8862 end = pos; 8863 else 8864 start = pos; 8865 } 8866 8867 /* 8868 * Not found. Insert new tracking element. 8869 */ 8870 if (t->count >= t->max && !alloc_loc_track(t, 2 * t->max, GFP_ATOMIC)) 8871 return 0; 8872 8873 l = t->loc + pos; 8874 if (pos < t->count) 8875 memmove(l + 1, l, 8876 (t->count - pos) * sizeof(struct location)); 8877 t->count++; 8878 l->count = 1; 8879 l->addr = track->addr; 8880 l->sum_time = age; 8881 l->min_time = age; 8882 l->max_time = age; 8883 l->min_pid = track->pid; 8884 l->max_pid = track->pid; 8885 l->handle = handle; 8886 l->waste = waste; 8887 cpumask_clear(to_cpumask(l->cpus)); 8888 cpumask_set_cpu(track->cpu, to_cpumask(l->cpus)); 8889 nodes_clear(l->nodes); 8890 node_set(page_to_nid(virt_to_page(track)), l->nodes); 8891 return 1; 8892 } 8893 8894 static void process_slab(struct loc_track *t, struct kmem_cache *s, 8895 struct slab *slab, enum track_item alloc, 8896 unsigned long *obj_map) 8897 { 8898 void *addr = slab_address(slab); 8899 bool is_alloc = (alloc == TRACK_ALLOC); 8900 void *p; 8901 8902 __fill_map(obj_map, s, slab); 8903 8904 for_each_object(p, s, addr, slab->objects) 8905 if (!test_bit(__obj_to_index(s, addr, p), obj_map)) 8906 add_location(t, s, get_track(s, p, alloc), 8907 is_alloc ? get_orig_size(s, p) : 8908 s->object_size); 8909 } 8910 #endif /* CONFIG_DEBUG_FS */ 8911 #endif /* CONFIG_SLUB_DEBUG */ 8912 8913 #ifdef SLAB_SUPPORTS_SYSFS 8914 enum slab_stat_type { 8915 SL_ALL, /* All slabs */ 8916 SL_PARTIAL, /* Only partially allocated slabs */ 8917 SL_CPU, /* Only slabs used for cpu caches */ 8918 SL_OBJECTS, /* Determine allocated objects not slabs */ 8919 SL_TOTAL /* Determine object capacity not slabs */ 8920 }; 8921 8922 #define SO_ALL (1 << SL_ALL) 8923 #define SO_PARTIAL (1 << SL_PARTIAL) 8924 #define SO_CPU (1 << SL_CPU) 8925 #define SO_OBJECTS (1 << SL_OBJECTS) 8926 #define SO_TOTAL (1 << SL_TOTAL) 8927 8928 static ssize_t show_slab_objects(struct kmem_cache *s, 8929 char *buf, unsigned long flags) 8930 { 8931 unsigned long total = 0; 8932 int node; 8933 int x; 8934 unsigned long *nodes; 8935 int len = 0; 8936 8937 nodes = kcalloc(nr_node_ids, sizeof(unsigned long), GFP_KERNEL); 8938 if (!nodes) 8939 return -ENOMEM; 8940 8941 /* 8942 * It is impossible to take "mem_hotplug_lock" here with "kernfs_mutex" 8943 * already held which will conflict with an existing lock order: 8944 * 8945 * mem_hotplug_lock->slab_mutex->kernfs_mutex 8946 * 8947 * We don't really need mem_hotplug_lock (to hold off 8948 * slab_mem_going_offline_callback) here because slab's memory hot 8949 * unplug code doesn't destroy the kmem_cache->node[] data. 8950 */ 8951 8952 #ifdef CONFIG_SLUB_DEBUG 8953 if (flags & SO_ALL) { 8954 struct kmem_cache_node *n; 8955 8956 for_each_kmem_cache_node(s, node, n) { 8957 8958 if (flags & SO_TOTAL) 8959 x = node_nr_objs(n); 8960 else if (flags & SO_OBJECTS) 8961 x = node_nr_objs(n) - count_partial(n, count_free); 8962 else 8963 x = node_nr_slabs(n); 8964 total += x; 8965 nodes[node] += x; 8966 } 8967 8968 } else 8969 #endif 8970 if (flags & SO_PARTIAL) { 8971 struct kmem_cache_node *n; 8972 8973 for_each_kmem_cache_node(s, node, n) { 8974 if (flags & SO_TOTAL) 8975 x = count_partial(n, count_total); 8976 else if (flags & SO_OBJECTS) 8977 x = count_partial(n, count_inuse); 8978 else 8979 x = n->nr_partial; 8980 total += x; 8981 nodes[node] += x; 8982 } 8983 } 8984 8985 len += sysfs_emit_at(buf, len, "%lu", total); 8986 #ifdef CONFIG_NUMA 8987 for (node = 0; node < nr_node_ids; node++) { 8988 if (nodes[node]) 8989 len += sysfs_emit_at(buf, len, " N%d=%lu", 8990 node, nodes[node]); 8991 } 8992 #endif 8993 len += sysfs_emit_at(buf, len, "\n"); 8994 kfree(nodes); 8995 8996 return len; 8997 } 8998 8999 #define to_slab_attr(n) container_of_const(n, struct slab_attribute, attr) 9000 #define to_slab(n) container_of(n, struct kmem_cache, kobj) 9001 9002 struct slab_attribute { 9003 struct attribute attr; 9004 ssize_t (*show)(struct kmem_cache *s, char *buf); 9005 ssize_t (*store)(struct kmem_cache *s, const char *x, size_t count); 9006 }; 9007 9008 #define SLAB_ATTR_RO(_name) \ 9009 static const struct slab_attribute _name##_attr = __ATTR_RO_MODE(_name, 0400) 9010 9011 #define SLAB_ATTR(_name) \ 9012 static const struct slab_attribute _name##_attr = __ATTR_RW_MODE(_name, 0600) 9013 9014 static ssize_t slab_size_show(struct kmem_cache *s, char *buf) 9015 { 9016 return sysfs_emit(buf, "%u\n", s->size); 9017 } 9018 SLAB_ATTR_RO(slab_size); 9019 9020 static ssize_t align_show(struct kmem_cache *s, char *buf) 9021 { 9022 return sysfs_emit(buf, "%u\n", s->align); 9023 } 9024 SLAB_ATTR_RO(align); 9025 9026 static ssize_t object_size_show(struct kmem_cache *s, char *buf) 9027 { 9028 return sysfs_emit(buf, "%u\n", s->object_size); 9029 } 9030 SLAB_ATTR_RO(object_size); 9031 9032 static ssize_t objs_per_slab_show(struct kmem_cache *s, char *buf) 9033 { 9034 return sysfs_emit(buf, "%u\n", oo_objects(s->oo)); 9035 } 9036 SLAB_ATTR_RO(objs_per_slab); 9037 9038 static ssize_t order_show(struct kmem_cache *s, char *buf) 9039 { 9040 return sysfs_emit(buf, "%u\n", oo_order(s->oo)); 9041 } 9042 SLAB_ATTR_RO(order); 9043 9044 static ssize_t sheaf_capacity_show(struct kmem_cache *s, char *buf) 9045 { 9046 return sysfs_emit(buf, "%u\n", s->sheaf_capacity); 9047 } 9048 SLAB_ATTR_RO(sheaf_capacity); 9049 9050 static ssize_t min_partial_show(struct kmem_cache *s, char *buf) 9051 { 9052 return sysfs_emit(buf, "%lu\n", s->min_partial); 9053 } 9054 9055 static ssize_t min_partial_store(struct kmem_cache *s, const char *buf, 9056 size_t length) 9057 { 9058 unsigned long min; 9059 int err; 9060 9061 err = kstrtoul(buf, 10, &min); 9062 if (err) 9063 return err; 9064 9065 s->min_partial = min; 9066 return length; 9067 } 9068 SLAB_ATTR(min_partial); 9069 9070 static ssize_t cpu_partial_show(struct kmem_cache *s, char *buf) 9071 { 9072 return sysfs_emit(buf, "0\n"); 9073 } 9074 9075 static ssize_t cpu_partial_store(struct kmem_cache *s, const char *buf, 9076 size_t length) 9077 { 9078 unsigned int objects; 9079 int err; 9080 9081 err = kstrtouint(buf, 10, &objects); 9082 if (err) 9083 return err; 9084 if (objects) 9085 return -EINVAL; 9086 9087 return length; 9088 } 9089 SLAB_ATTR(cpu_partial); 9090 9091 static ssize_t ctor_show(struct kmem_cache *s, char *buf) 9092 { 9093 if (!s->ctor) 9094 return 0; 9095 return sysfs_emit(buf, "%pS\n", s->ctor); 9096 } 9097 SLAB_ATTR_RO(ctor); 9098 9099 static ssize_t aliases_show(struct kmem_cache *s, char *buf) 9100 { 9101 return sysfs_emit(buf, "%d\n", s->refcount < 0 ? 0 : s->refcount - 1); 9102 } 9103 SLAB_ATTR_RO(aliases); 9104 9105 static ssize_t partial_show(struct kmem_cache *s, char *buf) 9106 { 9107 return show_slab_objects(s, buf, SO_PARTIAL); 9108 } 9109 SLAB_ATTR_RO(partial); 9110 9111 static ssize_t cpu_slabs_show(struct kmem_cache *s, char *buf) 9112 { 9113 return show_slab_objects(s, buf, SO_CPU); 9114 } 9115 SLAB_ATTR_RO(cpu_slabs); 9116 9117 static ssize_t objects_partial_show(struct kmem_cache *s, char *buf) 9118 { 9119 return show_slab_objects(s, buf, SO_PARTIAL|SO_OBJECTS); 9120 } 9121 SLAB_ATTR_RO(objects_partial); 9122 9123 static ssize_t slabs_cpu_partial_show(struct kmem_cache *s, char *buf) 9124 { 9125 return sysfs_emit(buf, "0(0)\n"); 9126 } 9127 SLAB_ATTR_RO(slabs_cpu_partial); 9128 9129 static ssize_t reclaim_account_show(struct kmem_cache *s, char *buf) 9130 { 9131 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_RECLAIM_ACCOUNT)); 9132 } 9133 SLAB_ATTR_RO(reclaim_account); 9134 9135 static ssize_t hwcache_align_show(struct kmem_cache *s, char *buf) 9136 { 9137 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_HWCACHE_ALIGN)); 9138 } 9139 SLAB_ATTR_RO(hwcache_align); 9140 9141 #ifdef CONFIG_ZONE_DMA 9142 static ssize_t cache_dma_show(struct kmem_cache *s, char *buf) 9143 { 9144 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_CACHE_DMA)); 9145 } 9146 SLAB_ATTR_RO(cache_dma); 9147 #endif 9148 9149 #ifdef CONFIG_HARDENED_USERCOPY 9150 static ssize_t usersize_show(struct kmem_cache *s, char *buf) 9151 { 9152 return sysfs_emit(buf, "%u\n", s->usersize); 9153 } 9154 SLAB_ATTR_RO(usersize); 9155 #endif 9156 9157 static ssize_t destroy_by_rcu_show(struct kmem_cache *s, char *buf) 9158 { 9159 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_TYPESAFE_BY_RCU)); 9160 } 9161 SLAB_ATTR_RO(destroy_by_rcu); 9162 9163 #ifdef CONFIG_SLUB_DEBUG 9164 static ssize_t slabs_show(struct kmem_cache *s, char *buf) 9165 { 9166 return show_slab_objects(s, buf, SO_ALL); 9167 } 9168 SLAB_ATTR_RO(slabs); 9169 9170 static ssize_t total_objects_show(struct kmem_cache *s, char *buf) 9171 { 9172 return show_slab_objects(s, buf, SO_ALL|SO_TOTAL); 9173 } 9174 SLAB_ATTR_RO(total_objects); 9175 9176 static ssize_t objects_show(struct kmem_cache *s, char *buf) 9177 { 9178 return show_slab_objects(s, buf, SO_ALL|SO_OBJECTS); 9179 } 9180 SLAB_ATTR_RO(objects); 9181 9182 static ssize_t sanity_checks_show(struct kmem_cache *s, char *buf) 9183 { 9184 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_CONSISTENCY_CHECKS)); 9185 } 9186 SLAB_ATTR_RO(sanity_checks); 9187 9188 static ssize_t trace_show(struct kmem_cache *s, char *buf) 9189 { 9190 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_TRACE)); 9191 } 9192 SLAB_ATTR_RO(trace); 9193 9194 static ssize_t red_zone_show(struct kmem_cache *s, char *buf) 9195 { 9196 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_RED_ZONE)); 9197 } 9198 9199 SLAB_ATTR_RO(red_zone); 9200 9201 static ssize_t poison_show(struct kmem_cache *s, char *buf) 9202 { 9203 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_POISON)); 9204 } 9205 9206 SLAB_ATTR_RO(poison); 9207 9208 static ssize_t store_user_show(struct kmem_cache *s, char *buf) 9209 { 9210 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_STORE_USER)); 9211 } 9212 9213 SLAB_ATTR_RO(store_user); 9214 9215 static ssize_t validate_show(struct kmem_cache *s, char *buf) 9216 { 9217 return 0; 9218 } 9219 9220 static ssize_t validate_store(struct kmem_cache *s, 9221 const char *buf, size_t length) 9222 { 9223 int ret = -EINVAL; 9224 9225 if (buf[0] == '1' && kmem_cache_debug(s)) { 9226 ret = validate_slab_cache(s); 9227 if (ret >= 0) 9228 ret = length; 9229 } 9230 return ret; 9231 } 9232 SLAB_ATTR(validate); 9233 9234 #endif /* CONFIG_SLUB_DEBUG */ 9235 9236 #ifdef CONFIG_FAILSLAB 9237 static ssize_t failslab_show(struct kmem_cache *s, char *buf) 9238 { 9239 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_FAILSLAB)); 9240 } 9241 9242 static ssize_t failslab_store(struct kmem_cache *s, const char *buf, 9243 size_t length) 9244 { 9245 if (s->refcount > 1) 9246 return -EINVAL; 9247 9248 if (buf[0] == '1') 9249 WRITE_ONCE(s->flags, s->flags | SLAB_FAILSLAB); 9250 else 9251 WRITE_ONCE(s->flags, s->flags & ~SLAB_FAILSLAB); 9252 9253 return length; 9254 } 9255 SLAB_ATTR(failslab); 9256 #endif 9257 9258 static ssize_t shrink_show(struct kmem_cache *s, char *buf) 9259 { 9260 return 0; 9261 } 9262 9263 static ssize_t shrink_store(struct kmem_cache *s, 9264 const char *buf, size_t length) 9265 { 9266 if (buf[0] == '1') 9267 kmem_cache_shrink(s); 9268 else 9269 return -EINVAL; 9270 return length; 9271 } 9272 SLAB_ATTR(shrink); 9273 9274 #ifdef CONFIG_NUMA 9275 static ssize_t remote_node_defrag_ratio_show(struct kmem_cache *s, char *buf) 9276 { 9277 return sysfs_emit(buf, "%u\n", s->remote_node_defrag_ratio / 10); 9278 } 9279 9280 static ssize_t remote_node_defrag_ratio_store(struct kmem_cache *s, 9281 const char *buf, size_t length) 9282 { 9283 unsigned int ratio; 9284 int err; 9285 9286 err = kstrtouint(buf, 10, &ratio); 9287 if (err) 9288 return err; 9289 if (ratio > 100) 9290 return -ERANGE; 9291 9292 s->remote_node_defrag_ratio = ratio * 10; 9293 9294 return length; 9295 } 9296 SLAB_ATTR(remote_node_defrag_ratio); 9297 #endif 9298 9299 #ifdef CONFIG_SLUB_STATS 9300 static int show_stat(struct kmem_cache *s, char *buf, enum stat_item si) 9301 { 9302 unsigned long sum = 0; 9303 int cpu; 9304 int len = 0; 9305 int *data = kmalloc_objs(int, nr_cpu_ids); 9306 9307 if (!data) 9308 return -ENOMEM; 9309 9310 for_each_online_cpu(cpu) { 9311 unsigned int x = per_cpu_ptr(s->cpu_stats, cpu)->stat[si]; 9312 9313 data[cpu] = x; 9314 sum += x; 9315 } 9316 9317 len += sysfs_emit_at(buf, len, "%lu", sum); 9318 9319 #ifdef CONFIG_SMP 9320 for_each_online_cpu(cpu) { 9321 if (data[cpu]) 9322 len += sysfs_emit_at(buf, len, " C%d=%u", 9323 cpu, data[cpu]); 9324 } 9325 #endif 9326 kfree(data); 9327 len += sysfs_emit_at(buf, len, "\n"); 9328 9329 return len; 9330 } 9331 9332 static void clear_stat(struct kmem_cache *s, enum stat_item si) 9333 { 9334 int cpu; 9335 9336 for_each_online_cpu(cpu) 9337 per_cpu_ptr(s->cpu_stats, cpu)->stat[si] = 0; 9338 } 9339 9340 #define STAT_ATTR(si, text) \ 9341 static ssize_t text##_show(struct kmem_cache *s, char *buf) \ 9342 { \ 9343 return show_stat(s, buf, si); \ 9344 } \ 9345 static ssize_t text##_store(struct kmem_cache *s, \ 9346 const char *buf, size_t length) \ 9347 { \ 9348 if (buf[0] != '0') \ 9349 return -EINVAL; \ 9350 clear_stat(s, si); \ 9351 return length; \ 9352 } \ 9353 SLAB_ATTR(text); \ 9354 9355 STAT_ATTR(ALLOC_FASTPATH, alloc_fastpath); 9356 STAT_ATTR(ALLOC_SLOWPATH, alloc_slowpath); 9357 STAT_ATTR(FREE_RCU_SHEAF, free_rcu_sheaf); 9358 STAT_ATTR(FREE_RCU_SHEAF_FAIL, free_rcu_sheaf_fail); 9359 STAT_ATTR(FREE_FASTPATH, free_fastpath); 9360 STAT_ATTR(FREE_SLOWPATH, free_slowpath); 9361 STAT_ATTR(FREE_ADD_PARTIAL, free_add_partial); 9362 STAT_ATTR(FREE_REMOVE_PARTIAL, free_remove_partial); 9363 STAT_ATTR(ALLOC_SLAB, alloc_slab); 9364 STAT_ATTR(ALLOC_NODE_MISMATCH, alloc_node_mismatch); 9365 STAT_ATTR(FREE_SLAB, free_slab); 9366 STAT_ATTR(ORDER_FALLBACK, order_fallback); 9367 STAT_ATTR(CMPXCHG_DOUBLE_FAIL, cmpxchg_double_fail); 9368 STAT_ATTR(SHEAF_FLUSH, sheaf_flush); 9369 STAT_ATTR(SHEAF_REFILL, sheaf_refill); 9370 STAT_ATTR(SHEAF_ALLOC, sheaf_alloc); 9371 STAT_ATTR(SHEAF_FREE, sheaf_free); 9372 STAT_ATTR(BARN_GET, barn_get); 9373 STAT_ATTR(BARN_GET_FAIL, barn_get_fail); 9374 STAT_ATTR(BARN_PUT, barn_put); 9375 STAT_ATTR(BARN_PUT_FAIL, barn_put_fail); 9376 STAT_ATTR(SHEAF_PREFILL_FAST, sheaf_prefill_fast); 9377 STAT_ATTR(SHEAF_PREFILL_SLOW, sheaf_prefill_slow); 9378 STAT_ATTR(SHEAF_PREFILL_OVERSIZE, sheaf_prefill_oversize); 9379 STAT_ATTR(SHEAF_RETURN_FAST, sheaf_return_fast); 9380 STAT_ATTR(SHEAF_RETURN_SLOW, sheaf_return_slow); 9381 #endif /* CONFIG_SLUB_STATS */ 9382 9383 #ifdef CONFIG_KFENCE 9384 static ssize_t skip_kfence_show(struct kmem_cache *s, char *buf) 9385 { 9386 return sysfs_emit(buf, "%d\n", !!(s->flags & SLAB_SKIP_KFENCE)); 9387 } 9388 9389 static ssize_t skip_kfence_store(struct kmem_cache *s, 9390 const char *buf, size_t length) 9391 { 9392 int ret = length; 9393 9394 if (buf[0] == '0') 9395 s->flags &= ~SLAB_SKIP_KFENCE; 9396 else if (buf[0] == '1') 9397 s->flags |= SLAB_SKIP_KFENCE; 9398 else 9399 ret = -EINVAL; 9400 9401 return ret; 9402 } 9403 SLAB_ATTR(skip_kfence); 9404 #endif 9405 9406 static const struct attribute *const slab_attrs[] = { 9407 &slab_size_attr.attr, 9408 &object_size_attr.attr, 9409 &objs_per_slab_attr.attr, 9410 &order_attr.attr, 9411 &sheaf_capacity_attr.attr, 9412 &min_partial_attr.attr, 9413 &cpu_partial_attr.attr, 9414 &objects_partial_attr.attr, 9415 &partial_attr.attr, 9416 &cpu_slabs_attr.attr, 9417 &ctor_attr.attr, 9418 &aliases_attr.attr, 9419 &align_attr.attr, 9420 &hwcache_align_attr.attr, 9421 &reclaim_account_attr.attr, 9422 &destroy_by_rcu_attr.attr, 9423 &shrink_attr.attr, 9424 &slabs_cpu_partial_attr.attr, 9425 #ifdef CONFIG_SLUB_DEBUG 9426 &total_objects_attr.attr, 9427 &objects_attr.attr, 9428 &slabs_attr.attr, 9429 &sanity_checks_attr.attr, 9430 &trace_attr.attr, 9431 &red_zone_attr.attr, 9432 &poison_attr.attr, 9433 &store_user_attr.attr, 9434 &validate_attr.attr, 9435 #endif 9436 #ifdef CONFIG_ZONE_DMA 9437 &cache_dma_attr.attr, 9438 #endif 9439 #ifdef CONFIG_NUMA 9440 &remote_node_defrag_ratio_attr.attr, 9441 #endif 9442 #ifdef CONFIG_SLUB_STATS 9443 &alloc_fastpath_attr.attr, 9444 &alloc_slowpath_attr.attr, 9445 &free_rcu_sheaf_attr.attr, 9446 &free_rcu_sheaf_fail_attr.attr, 9447 &free_fastpath_attr.attr, 9448 &free_slowpath_attr.attr, 9449 &free_add_partial_attr.attr, 9450 &free_remove_partial_attr.attr, 9451 &alloc_slab_attr.attr, 9452 &alloc_node_mismatch_attr.attr, 9453 &free_slab_attr.attr, 9454 &order_fallback_attr.attr, 9455 &cmpxchg_double_fail_attr.attr, 9456 &sheaf_flush_attr.attr, 9457 &sheaf_refill_attr.attr, 9458 &sheaf_alloc_attr.attr, 9459 &sheaf_free_attr.attr, 9460 &barn_get_attr.attr, 9461 &barn_get_fail_attr.attr, 9462 &barn_put_attr.attr, 9463 &barn_put_fail_attr.attr, 9464 &sheaf_prefill_fast_attr.attr, 9465 &sheaf_prefill_slow_attr.attr, 9466 &sheaf_prefill_oversize_attr.attr, 9467 &sheaf_return_fast_attr.attr, 9468 &sheaf_return_slow_attr.attr, 9469 #endif 9470 #ifdef CONFIG_FAILSLAB 9471 &failslab_attr.attr, 9472 #endif 9473 #ifdef CONFIG_HARDENED_USERCOPY 9474 &usersize_attr.attr, 9475 #endif 9476 #ifdef CONFIG_KFENCE 9477 &skip_kfence_attr.attr, 9478 #endif 9479 9480 NULL 9481 }; 9482 9483 ATTRIBUTE_GROUPS(slab); 9484 9485 static ssize_t slab_attr_show(struct kobject *kobj, 9486 struct attribute *attr, 9487 char *buf) 9488 { 9489 const struct slab_attribute *attribute; 9490 struct kmem_cache *s; 9491 9492 attribute = to_slab_attr(attr); 9493 s = to_slab(kobj); 9494 9495 if (!attribute->show) 9496 return -EIO; 9497 9498 return attribute->show(s, buf); 9499 } 9500 9501 static ssize_t slab_attr_store(struct kobject *kobj, 9502 struct attribute *attr, 9503 const char *buf, size_t len) 9504 { 9505 const struct slab_attribute *attribute; 9506 struct kmem_cache *s; 9507 9508 attribute = to_slab_attr(attr); 9509 s = to_slab(kobj); 9510 9511 if (!attribute->store) 9512 return -EIO; 9513 9514 return attribute->store(s, buf, len); 9515 } 9516 9517 static void kmem_cache_release(struct kobject *k) 9518 { 9519 slab_kmem_cache_release(to_slab(k)); 9520 } 9521 9522 static const struct sysfs_ops slab_sysfs_ops = { 9523 .show = slab_attr_show, 9524 .store = slab_attr_store, 9525 }; 9526 9527 static const struct kobj_type slab_ktype = { 9528 .sysfs_ops = &slab_sysfs_ops, 9529 .release = kmem_cache_release, 9530 .default_groups = slab_groups, 9531 }; 9532 9533 static struct kset *slab_kset; 9534 9535 static inline struct kset *cache_kset(struct kmem_cache *s) 9536 { 9537 return slab_kset; 9538 } 9539 9540 #define ID_STR_LENGTH 32 9541 9542 /* Create a unique string id for a slab cache: 9543 * 9544 * Format :[flags-]size 9545 */ 9546 static char *create_unique_id(struct kmem_cache *s) 9547 { 9548 char *name = kmalloc(ID_STR_LENGTH, GFP_KERNEL); 9549 char *p = name; 9550 9551 if (!name) 9552 return ERR_PTR(-ENOMEM); 9553 9554 *p++ = ':'; 9555 /* 9556 * First flags affecting slabcache operations. We will only 9557 * get here for aliasable slabs so we do not need to support 9558 * too many flags. The flags here must cover all flags that 9559 * are matched during merging to guarantee that the id is 9560 * unique. 9561 */ 9562 if (s->flags & SLAB_CACHE_DMA) 9563 *p++ = 'd'; 9564 if (s->flags & SLAB_CACHE_DMA32) 9565 *p++ = 'D'; 9566 if (s->flags & SLAB_RECLAIM_ACCOUNT) 9567 *p++ = 'a'; 9568 if (s->flags & SLAB_CONSISTENCY_CHECKS) 9569 *p++ = 'F'; 9570 if (s->flags & SLAB_ACCOUNT) 9571 *p++ = 'A'; 9572 if (p != name + 1) 9573 *p++ = '-'; 9574 p += snprintf(p, ID_STR_LENGTH - (p - name), "%07u", s->size); 9575 9576 if (WARN_ON(p > name + ID_STR_LENGTH - 1)) { 9577 kfree(name); 9578 return ERR_PTR(-EINVAL); 9579 } 9580 kmsan_unpoison_memory(name, p - name); 9581 return name; 9582 } 9583 9584 static int sysfs_slab_add(struct kmem_cache *s) 9585 { 9586 int err; 9587 const char *name; 9588 struct kset *kset = cache_kset(s); 9589 int unmergeable = slab_unmergeable(s); 9590 9591 if (!unmergeable && disable_higher_order_debug && 9592 (slub_debug & DEBUG_METADATA_FLAGS)) 9593 unmergeable = 1; 9594 9595 if (unmergeable) { 9596 /* 9597 * Slabcache can never be merged so we can use the name proper. 9598 * This is typically the case for debug situations. In that 9599 * case we can catch duplicate names easily. 9600 */ 9601 sysfs_remove_link(&slab_kset->kobj, s->name); 9602 name = s->name; 9603 } else { 9604 /* 9605 * Create a unique name for the slab as a target 9606 * for the symlinks. 9607 */ 9608 name = create_unique_id(s); 9609 if (IS_ERR(name)) 9610 return PTR_ERR(name); 9611 } 9612 9613 s->kobj.kset = kset; 9614 err = kobject_init_and_add(&s->kobj, &slab_ktype, NULL, "%s", name); 9615 if (err) 9616 goto out; 9617 9618 if (!unmergeable) { 9619 /* Setup first alias */ 9620 sysfs_slab_alias(s, s->name); 9621 } 9622 out: 9623 if (!unmergeable) 9624 kfree(name); 9625 return err; 9626 } 9627 9628 void sysfs_slab_unlink(struct kmem_cache *s) 9629 { 9630 if (s->kobj.state_in_sysfs) 9631 kobject_del(&s->kobj); 9632 } 9633 9634 void sysfs_slab_release(struct kmem_cache *s) 9635 { 9636 kobject_put(&s->kobj); 9637 } 9638 9639 /* 9640 * Need to buffer aliases during bootup until sysfs becomes 9641 * available lest we lose that information. 9642 */ 9643 struct saved_alias { 9644 struct kmem_cache *s; 9645 const char *name; 9646 struct saved_alias *next; 9647 }; 9648 9649 static struct saved_alias *alias_list; 9650 9651 int sysfs_slab_alias(struct kmem_cache *s, const char *name) 9652 { 9653 struct saved_alias *al; 9654 9655 if (slab_state == FULL) { 9656 /* 9657 * If we have a leftover link then remove it. 9658 */ 9659 sysfs_remove_link(&slab_kset->kobj, name); 9660 /* 9661 * The original cache may have failed to generate sysfs file. 9662 * In that case, sysfs_create_link() returns -ENOENT and 9663 * symbolic link creation is skipped. 9664 */ 9665 return sysfs_create_link(&slab_kset->kobj, &s->kobj, name); 9666 } 9667 9668 al = kmalloc_obj(struct saved_alias); 9669 if (!al) 9670 return -ENOMEM; 9671 9672 al->s = s; 9673 al->name = name; 9674 al->next = alias_list; 9675 alias_list = al; 9676 kmsan_unpoison_memory(al, sizeof(*al)); 9677 return 0; 9678 } 9679 9680 static int __init slab_sysfs_init(void) 9681 { 9682 struct kmem_cache *s; 9683 int err; 9684 9685 mutex_lock(&slab_mutex); 9686 9687 slab_kset = kset_create_and_add("slab", NULL, kernel_kobj); 9688 if (!slab_kset) { 9689 mutex_unlock(&slab_mutex); 9690 pr_err("Cannot register slab subsystem.\n"); 9691 return -ENOMEM; 9692 } 9693 9694 slab_state = FULL; 9695 9696 list_for_each_entry(s, &slab_caches, list) { 9697 err = sysfs_slab_add(s); 9698 if (err) 9699 pr_err("SLUB: Unable to add boot slab %s to sysfs\n", 9700 s->name); 9701 } 9702 9703 while (alias_list) { 9704 struct saved_alias *al = alias_list; 9705 9706 alias_list = alias_list->next; 9707 err = sysfs_slab_alias(al->s, al->name); 9708 if (err) 9709 pr_err("SLUB: Unable to add boot slab alias %s to sysfs\n", 9710 al->name); 9711 kfree(al); 9712 } 9713 9714 mutex_unlock(&slab_mutex); 9715 return 0; 9716 } 9717 late_initcall(slab_sysfs_init); 9718 #endif /* SLAB_SUPPORTS_SYSFS */ 9719 9720 #if defined(CONFIG_SLUB_DEBUG) && defined(CONFIG_DEBUG_FS) 9721 static int slab_debugfs_show(struct seq_file *seq, void *v) 9722 { 9723 struct loc_track *t = seq->private; 9724 struct location *l; 9725 unsigned long idx; 9726 9727 idx = (unsigned long) t->idx; 9728 if (idx < t->count) { 9729 l = &t->loc[idx]; 9730 9731 seq_printf(seq, "%7ld ", l->count); 9732 9733 if (l->addr) 9734 seq_printf(seq, "%pS", (void *)l->addr); 9735 else 9736 seq_puts(seq, "<not-available>"); 9737 9738 if (l->waste) 9739 seq_printf(seq, " waste=%lu/%lu", 9740 l->count * l->waste, l->waste); 9741 9742 if (l->sum_time != l->min_time) { 9743 seq_printf(seq, " age=%ld/%llu/%ld", 9744 l->min_time, div_u64(l->sum_time, l->count), 9745 l->max_time); 9746 } else 9747 seq_printf(seq, " age=%ld", l->min_time); 9748 9749 if (l->min_pid != l->max_pid) 9750 seq_printf(seq, " pid=%ld-%ld", l->min_pid, l->max_pid); 9751 else 9752 seq_printf(seq, " pid=%ld", 9753 l->min_pid); 9754 9755 if (num_online_cpus() > 1 && !cpumask_empty(to_cpumask(l->cpus))) 9756 seq_printf(seq, " cpus=%*pbl", 9757 cpumask_pr_args(to_cpumask(l->cpus))); 9758 9759 if (nr_online_nodes > 1 && !nodes_empty(l->nodes)) 9760 seq_printf(seq, " nodes=%*pbl", 9761 nodemask_pr_args(&l->nodes)); 9762 9763 #ifdef CONFIG_STACKDEPOT 9764 { 9765 depot_stack_handle_t handle; 9766 unsigned long *entries; 9767 unsigned int nr_entries, j; 9768 9769 handle = READ_ONCE(l->handle); 9770 if (handle) { 9771 nr_entries = stack_depot_fetch(handle, &entries); 9772 seq_puts(seq, "\n"); 9773 for (j = 0; j < nr_entries; j++) 9774 seq_printf(seq, " %pS\n", (void *)entries[j]); 9775 } 9776 } 9777 #endif 9778 seq_puts(seq, "\n"); 9779 } 9780 9781 if (!idx && !t->count) 9782 seq_puts(seq, "No data\n"); 9783 9784 return 0; 9785 } 9786 9787 static void slab_debugfs_stop(struct seq_file *seq, void *v) 9788 { 9789 } 9790 9791 static void *slab_debugfs_next(struct seq_file *seq, void *v, loff_t *ppos) 9792 { 9793 struct loc_track *t = seq->private; 9794 9795 t->idx = ++(*ppos); 9796 if (*ppos <= t->count) 9797 return ppos; 9798 9799 return NULL; 9800 } 9801 9802 static int cmp_loc_by_count(const void *a, const void *b) 9803 { 9804 struct location *loc1 = (struct location *)a; 9805 struct location *loc2 = (struct location *)b; 9806 9807 return cmp_int(loc2->count, loc1->count); 9808 } 9809 9810 static void *slab_debugfs_start(struct seq_file *seq, loff_t *ppos) 9811 { 9812 struct loc_track *t = seq->private; 9813 9814 t->idx = *ppos; 9815 return ppos; 9816 } 9817 9818 static const struct seq_operations slab_debugfs_sops = { 9819 .start = slab_debugfs_start, 9820 .next = slab_debugfs_next, 9821 .stop = slab_debugfs_stop, 9822 .show = slab_debugfs_show, 9823 }; 9824 9825 static int slab_debug_trace_open(struct inode *inode, struct file *filep) 9826 { 9827 9828 struct kmem_cache_node *n; 9829 enum track_item alloc; 9830 int node; 9831 struct loc_track *t = __seq_open_private(filep, &slab_debugfs_sops, 9832 sizeof(struct loc_track)); 9833 struct kmem_cache *s = file_inode(filep)->i_private; 9834 unsigned long *obj_map; 9835 9836 if (!t) 9837 return -ENOMEM; 9838 9839 obj_map = bitmap_alloc(oo_objects(s->oo), GFP_KERNEL); 9840 if (!obj_map) { 9841 seq_release_private(inode, filep); 9842 return -ENOMEM; 9843 } 9844 9845 alloc = debugfs_get_aux_num(filep); 9846 9847 if (!alloc_loc_track(t, PAGE_SIZE / sizeof(struct location), GFP_KERNEL)) { 9848 bitmap_free(obj_map); 9849 seq_release_private(inode, filep); 9850 return -ENOMEM; 9851 } 9852 9853 for_each_kmem_cache_node(s, node, n) { 9854 unsigned long flags; 9855 struct slab *slab; 9856 9857 if (!node_nr_slabs(n)) 9858 continue; 9859 9860 spin_lock_irqsave(&n->list_lock, flags); 9861 list_for_each_entry(slab, &n->partial, slab_list) 9862 process_slab(t, s, slab, alloc, obj_map); 9863 list_for_each_entry(slab, &n->full, slab_list) 9864 process_slab(t, s, slab, alloc, obj_map); 9865 spin_unlock_irqrestore(&n->list_lock, flags); 9866 } 9867 9868 /* Sort locations by count */ 9869 sort(t->loc, t->count, sizeof(struct location), 9870 cmp_loc_by_count, NULL); 9871 9872 bitmap_free(obj_map); 9873 return 0; 9874 } 9875 9876 static int slab_debug_trace_release(struct inode *inode, struct file *file) 9877 { 9878 struct seq_file *seq = file->private_data; 9879 struct loc_track *t = seq->private; 9880 9881 free_loc_track(t); 9882 return seq_release_private(inode, file); 9883 } 9884 9885 static const struct file_operations slab_debugfs_fops = { 9886 .open = slab_debug_trace_open, 9887 .read = seq_read, 9888 .llseek = seq_lseek, 9889 .release = slab_debug_trace_release, 9890 }; 9891 9892 static void debugfs_slab_add(struct kmem_cache *s) 9893 { 9894 struct dentry *slab_cache_dir; 9895 9896 if (unlikely(!slab_debugfs_root)) 9897 return; 9898 9899 slab_cache_dir = debugfs_create_dir(s->name, slab_debugfs_root); 9900 9901 debugfs_create_file_aux_num("alloc_traces", 0400, slab_cache_dir, s, 9902 TRACK_ALLOC, &slab_debugfs_fops); 9903 9904 debugfs_create_file_aux_num("free_traces", 0400, slab_cache_dir, s, 9905 TRACK_FREE, &slab_debugfs_fops); 9906 } 9907 9908 void debugfs_slab_release(struct kmem_cache *s) 9909 { 9910 debugfs_lookup_and_remove(s->name, slab_debugfs_root); 9911 } 9912 9913 static int __init slab_debugfs_init(void) 9914 { 9915 struct kmem_cache *s; 9916 9917 slab_debugfs_root = debugfs_create_dir("slab", NULL); 9918 9919 list_for_each_entry(s, &slab_caches, list) 9920 if (s->flags & SLAB_STORE_USER) 9921 debugfs_slab_add(s); 9922 9923 return 0; 9924 9925 } 9926 __initcall(slab_debugfs_init); 9927 #endif 9928 /* 9929 * The /proc/slabinfo ABI 9930 */ 9931 #ifdef CONFIG_SLUB_DEBUG 9932 void get_slabinfo(struct kmem_cache *s, struct slabinfo *sinfo) 9933 { 9934 unsigned long nr_slabs = 0; 9935 unsigned long nr_objs = 0; 9936 unsigned long nr_free = 0; 9937 int node; 9938 struct kmem_cache_node *n; 9939 9940 for_each_kmem_cache_node(s, node, n) { 9941 nr_slabs += node_nr_slabs(n); 9942 nr_objs += node_nr_objs(n); 9943 nr_free += count_partial_free_approx(n); 9944 } 9945 9946 sinfo->active_objs = nr_objs - nr_free; 9947 sinfo->num_objs = nr_objs; 9948 sinfo->active_slabs = nr_slabs; 9949 sinfo->num_slabs = nr_slabs; 9950 sinfo->objects_per_slab = oo_objects(s->oo); 9951 sinfo->cache_order = oo_order(s->oo); 9952 } 9953 #endif /* CONFIG_SLUB_DEBUG */ 9954