1 // SPDX-License-Identifier: GPL-2.0-or-later 2 3 /* 4 * zsmalloc memory allocator 5 * 6 * Copyright (C) 2011 Nitin Gupta 7 * Copyright (C) 2012, 2013 Minchan Kim 8 * 9 * This code is released using a dual license strategy: BSD/GPL 10 * You can choose the license that better fits your requirements. 11 * 12 * Released under the terms of 3-clause BSD License 13 * Released under the terms of GNU General Public License Version 2.0 14 */ 15 16 #define pr_fmt(fmt) KBUILD_MODNAME ": " fmt 17 18 /* 19 * lock ordering: 20 * page_lock 21 * pool->lock 22 * class->lock 23 * zspage->lock 24 * 25 * When ZS_OBJ_CLASS_BITS > 0, zs_free() skips pool->lock; it picks 26 * the size_class from obj's encoded class_idx and serializes against 27 * page migration via class->lock. 28 */ 29 30 #include <linux/module.h> 31 #include <linux/kernel.h> 32 #include <linux/sched.h> 33 #include <linux/errno.h> 34 #include <linux/highmem.h> 35 #include <linux/string.h> 36 #include <linux/slab.h> 37 #include <linux/scatterlist.h> 38 #include <linux/spinlock.h> 39 #include <linux/sprintf.h> 40 #include <linux/shrinker.h> 41 #include <linux/types.h> 42 #include <linux/debugfs.h> 43 #include <linux/zsmalloc.h> 44 #include <linux/fs.h> 45 #include <linux/workqueue.h> 46 #include "zpdesc.h" 47 48 #define ZSPAGE_MAGIC 0x58 49 50 /* 51 * This must be power of 2 and greater than or equal to sizeof(link_free). 52 * These two conditions ensure that any 'struct link_free' itself doesn't 53 * span more than 1 page which avoids complex case of mapping 2 pages simply 54 * to restore link_free pointer values. 55 */ 56 #define ZS_ALIGN 8 57 58 #define ZS_HANDLE_SIZE (sizeof(unsigned long)) 59 60 /* 61 * Object location (<PFN>, <obj_idx>) is encoded as 62 * a single (unsigned long) handle value. 63 * 64 * Note that object index <obj_idx> starts from 0. 65 * 66 * This is made more complicated by various memory models and PAE. 67 */ 68 69 #ifndef MAX_POSSIBLE_PHYSMEM_BITS 70 #ifdef MAX_PHYSMEM_BITS 71 #define MAX_POSSIBLE_PHYSMEM_BITS MAX_PHYSMEM_BITS 72 #else 73 /* 74 * If this definition of MAX_PHYSMEM_BITS is used, ZS_OBJ_PFN_SHIFT will 75 * just be PAGE_SHIFT 76 */ 77 #define MAX_POSSIBLE_PHYSMEM_BITS BITS_PER_LONG 78 #endif 79 #endif 80 81 #define _PFN_BITS (MAX_POSSIBLE_PHYSMEM_BITS - PAGE_SHIFT) 82 83 /* 84 * Head in allocated object should have OBJ_ALLOCATED_TAG 85 * to identify the object was allocated or not. 86 * It's okay to add the status bit in the least bit because 87 * header keeps handle which is 4byte-aligned address so we 88 * have room for two bit at least. 89 */ 90 #define OBJ_ALLOCATED_TAG 1 91 92 #define OBJ_TAG_BITS 1 93 #define OBJ_TAG_MASK OBJ_ALLOCATED_TAG 94 95 /* 96 * obj is encoded as [PFN | class_idx | obj_idx] within an unsigned long: 97 * 98 * |<-- _PFN_BITS -->|<-- ZS_OBJ_CLASS_BITS -->|<-- ZS_OBJ_IDX_BITS -->| 99 * +-----------------+-------------------------+-----------------------+ 100 * | PFN | class_idx | obj_idx | 101 * +-----------------+-------------------------+-----------------------+ 102 * MSB ^ LSB 103 * | 104 * +-- ZS_OBJ_PFN_SHIFT 105 * 106 * Encoding class_idx into obj lets zs_free() locate the size_class 107 * without holding pool->lock; class_idx is invariant across page 108 * migration (only PFN changes), so a lockless read of the obj value 109 * always yields a valid class_idx. 110 */ 111 #define ZS_OBJ_PFN_SHIFT (BITS_PER_LONG - _PFN_BITS) 112 113 #define HUGE_BITS 1 114 #define FULLNESS_BITS 4 115 #define CLASS_BITS 8 116 #define MAGIC_VAL_BITS 8 117 118 #define ZS_MAX_PAGES_PER_ZSPAGE (_AC(CONFIG_ZSMALLOC_CHAIN_SIZE, UL)) 119 120 /* 121 * Bits to index a page within a zspage = ceil(log2(ZS_MAX_PAGES_PER_ZSPAGE)). 122 * Computed at preprocessor time, for use in #if below. Kconfig 123 * restricts ZSMALLOC_CHAIN_SIZE to [4, 16]. 124 */ 125 #if ZS_MAX_PAGES_PER_ZSPAGE <= 4 126 #define ZS_PAGES_PER_ZSPAGE_BITS 2 127 #elif ZS_MAX_PAGES_PER_ZSPAGE <= 8 128 #define ZS_PAGES_PER_ZSPAGE_BITS 3 129 #elif ZS_MAX_PAGES_PER_ZSPAGE <= 16 130 #define ZS_PAGES_PER_ZSPAGE_BITS 4 131 #else 132 #error "ZSMALLOC_CHAIN_SIZE out of expected range [4,16]" 133 #endif 134 135 /* 136 * Bits to index an object within a single PAGE_SIZE at the smallest 137 * possible object size: log2(PAGE_SIZE / 32) = PAGE_SHIFT - 5. 138 * 32 is the hard floor of ZS_MIN_ALLOC_SIZE. 139 */ 140 #define ZS_OBJS_PER_PAGE_BITS (PAGE_SHIFT - 5) 141 142 /* 143 * Bits to index any object in the densest possible zspage. Below this, 144 * ZS_MIN_ALLOC_SIZE is auto-raised by the MAX(32, ...) formula -- still 145 * correct, but objects are coarser. 146 */ 147 #define ZS_OBJS_PER_ZSPAGE_BITS \ 148 (ZS_PAGES_PER_ZSPAGE_BITS + ZS_OBJS_PER_PAGE_BITS) 149 150 /* 151 * Encode class_idx only when obj has spare bits; otherwise 152 * ZS_OBJ_CLASS_BITS folds to 0 (32-bit, or 64-bit UML/fallback). 153 */ 154 #if BITS_PER_LONG >= 64 && \ 155 ZS_OBJ_PFN_SHIFT >= (CLASS_BITS + 1) + ZS_OBJS_PER_ZSPAGE_BITS 156 #define ZS_OBJ_CLASS_BITS (CLASS_BITS + 1) 157 #else 158 #define ZS_OBJ_CLASS_BITS 0 159 #endif 160 #define ZS_OBJ_CLASS_MASK ((_AC(1, UL) << ZS_OBJ_CLASS_BITS) - 1) 161 162 #define ZS_OBJ_IDX_BITS (ZS_OBJ_PFN_SHIFT - ZS_OBJ_CLASS_BITS) 163 #define ZS_OBJ_IDX_MASK ((_AC(1, UL) << ZS_OBJ_IDX_BITS) - 1) 164 165 /* 166 * Belt-and-suspenders: the #if above already guarantees this when 167 * class_idx is enabled. Catches future tweaks that bypass it. 168 */ 169 static_assert(ZS_OBJ_IDX_BITS >= ZS_PAGES_PER_ZSPAGE_BITS, 170 "zsmalloc: ZS_MIN_ALLOC_SIZE would exceed ZS_MAX_ALLOC_SIZE"); 171 172 /* ZS_MIN_ALLOC_SIZE must be multiple of ZS_ALIGN */ 173 #define ZS_MIN_ALLOC_SIZE \ 174 MAX(32, (ZS_MAX_PAGES_PER_ZSPAGE << PAGE_SHIFT >> ZS_OBJ_IDX_BITS)) 175 /* each chunk includes extra space to keep handle */ 176 #define ZS_MAX_ALLOC_SIZE PAGE_SIZE 177 178 /* 179 * On systems with 4K page size, this gives 255 size classes! There is a 180 * trade-off here: 181 * - Large number of size classes is potentially wasteful as free page are 182 * spread across these classes 183 * - Small number of size classes causes large internal fragmentation 184 * - Probably its better to use specific size classes (empirically 185 * determined). NOTE: all those class sizes must be set as multiple of 186 * ZS_ALIGN to make sure link_free itself never has to span 2 pages. 187 * 188 * ZS_MIN_ALLOC_SIZE and ZS_SIZE_CLASS_DELTA must be multiple of ZS_ALIGN 189 * (reason above) 190 */ 191 #define ZS_SIZE_CLASS_DELTA (PAGE_SIZE >> CLASS_BITS) 192 #define ZS_SIZE_CLASSES (DIV_ROUND_UP(ZS_MAX_ALLOC_SIZE - ZS_MIN_ALLOC_SIZE, \ 193 ZS_SIZE_CLASS_DELTA) + 1) 194 195 /* 196 * Pages are distinguished by the ratio of used memory (that is the ratio 197 * of ->inuse objects to all objects that page can store). For example, 198 * INUSE_RATIO_10 means that the ratio of used objects is > 0% and <= 10%. 199 * 200 * The number of fullness groups is not random. It allows us to keep 201 * difference between the least busy page in the group (minimum permitted 202 * number of ->inuse objects) and the most busy page (maximum permitted 203 * number of ->inuse objects) at a reasonable value. 204 */ 205 enum fullness_group { 206 ZS_INUSE_RATIO_0, 207 ZS_INUSE_RATIO_10, 208 /* NOTE: 8 more fullness groups here */ 209 ZS_INUSE_RATIO_99 = 10, 210 ZS_INUSE_RATIO_100, 211 NR_FULLNESS_GROUPS, 212 }; 213 214 enum class_stat_type { 215 /* NOTE: stats for 12 fullness groups here: from inuse 0 to 100 */ 216 ZS_OBJS_ALLOCATED = NR_FULLNESS_GROUPS, 217 ZS_OBJS_INUSE, 218 NR_CLASS_STAT_TYPES, 219 }; 220 221 struct zs_size_stat { 222 unsigned long objs[NR_CLASS_STAT_TYPES]; 223 }; 224 225 #ifdef CONFIG_ZSMALLOC_STAT 226 static struct dentry *zs_stat_root; 227 #endif 228 229 static size_t huge_class_size; 230 231 struct size_class { 232 spinlock_t lock; 233 struct list_head fullness_list[NR_FULLNESS_GROUPS]; 234 /* 235 * Size of objects stored in this class. Must be multiple 236 * of ZS_ALIGN. 237 */ 238 int size; 239 int objs_per_zspage; 240 /* Number of PAGE_SIZE sized pages to combine to form a 'zspage' */ 241 int pages_per_zspage; 242 243 unsigned int index; 244 struct zs_size_stat stats; 245 }; 246 247 /* 248 * Placed within free objects to form a singly linked list. 249 * For every zspage, zspage->freeobj gives head of this list. 250 * 251 * This must be power of 2 and less than or equal to ZS_ALIGN 252 */ 253 struct link_free { 254 union { 255 /* 256 * Free object index; 257 * It's valid for non-allocated object 258 */ 259 unsigned long next; 260 /* 261 * Handle of allocated object. 262 */ 263 unsigned long handle; 264 }; 265 }; 266 267 static struct kmem_cache *handle_cachep; 268 static struct kmem_cache *zspage_cachep; 269 270 struct zs_pool { 271 const char *name; 272 273 struct size_class *size_class[ZS_SIZE_CLASSES]; 274 275 atomic_long_t pages_allocated; 276 277 struct zs_pool_stats stats; 278 279 /* Compact classes */ 280 struct shrinker *shrinker; 281 282 #ifdef CONFIG_ZSMALLOC_STAT 283 struct dentry *stat_dentry; 284 #endif 285 #ifdef CONFIG_COMPACTION 286 struct work_struct free_work; 287 #endif 288 /* protect zspage migration/compaction */ 289 rwlock_t lock; 290 atomic_t compaction_in_progress; 291 }; 292 293 static inline void zpdesc_set_first(struct zpdesc *zpdesc) 294 { 295 SetPagePrivate(zpdesc_page(zpdesc)); 296 } 297 298 static inline void zpdesc_inc_zone_page_state(struct zpdesc *zpdesc) 299 { 300 inc_zone_page_state(zpdesc_page(zpdesc), NR_ZSPAGES); 301 } 302 303 static inline void zpdesc_dec_zone_page_state(struct zpdesc *zpdesc) 304 { 305 dec_zone_page_state(zpdesc_page(zpdesc), NR_ZSPAGES); 306 } 307 308 static inline struct zpdesc *alloc_zpdesc(gfp_t gfp, const int nid) 309 { 310 struct page *page = alloc_pages_node(nid, gfp, 0); 311 312 return page_zpdesc(page); 313 } 314 315 static inline void free_zpdesc(struct zpdesc *zpdesc) 316 { 317 struct page *page = zpdesc_page(zpdesc); 318 319 /* PageZsmalloc is sticky until the page is freed to the buddy. */ 320 __free_page(page); 321 } 322 323 #define ZS_PAGE_UNLOCKED 0 324 #define ZS_PAGE_WRLOCKED -1 325 326 struct zspage_lock { 327 spinlock_t lock; 328 int cnt; 329 struct lockdep_map dep_map; 330 }; 331 332 struct zspage { 333 struct { 334 unsigned int huge:HUGE_BITS; 335 unsigned int fullness:FULLNESS_BITS; 336 unsigned int class:CLASS_BITS + 1; 337 unsigned int magic:MAGIC_VAL_BITS; 338 }; 339 unsigned int inuse; 340 unsigned int freeobj; 341 struct zpdesc *first_zpdesc; 342 struct list_head list; /* fullness list */ 343 struct zs_pool *pool; 344 struct zspage_lock zsl; 345 }; 346 347 static void zspage_lock_init(struct zspage *zspage) 348 { 349 static struct lock_class_key __key; 350 struct zspage_lock *zsl = &zspage->zsl; 351 352 lockdep_init_map(&zsl->dep_map, "zspage->lock", &__key, 0); 353 spin_lock_init(&zsl->lock); 354 zsl->cnt = ZS_PAGE_UNLOCKED; 355 } 356 357 /* 358 * The zspage lock can be held from atomic contexts, but it needs to remain 359 * preemptible when held for reading because it remains held outside of those 360 * atomic contexts, otherwise we unnecessarily lose preemptibility. 361 * 362 * To achieve this, the following rules are enforced on readers and writers: 363 * 364 * - Writers are blocked by both writers and readers, while readers are only 365 * blocked by writers (i.e. normal rwlock semantics). 366 * 367 * - Writers are always atomic (to allow readers to spin waiting for them). 368 * 369 * - Writers always use trylock (as the lock may be held be sleeping readers). 370 * 371 * - Readers may spin on the lock (as they can only wait for atomic writers). 372 * 373 * - Readers may sleep while holding the lock (as writes only use trylock). 374 */ 375 static void zspage_read_lock(struct zspage *zspage) 376 { 377 struct zspage_lock *zsl = &zspage->zsl; 378 379 rwsem_acquire_read(&zsl->dep_map, 0, 0, _RET_IP_); 380 381 spin_lock(&zsl->lock); 382 zsl->cnt++; 383 spin_unlock(&zsl->lock); 384 385 lock_acquired(&zsl->dep_map, _RET_IP_); 386 } 387 388 static void zspage_read_unlock(struct zspage *zspage) 389 { 390 struct zspage_lock *zsl = &zspage->zsl; 391 392 rwsem_release(&zsl->dep_map, _RET_IP_); 393 394 spin_lock(&zsl->lock); 395 zsl->cnt--; 396 spin_unlock(&zsl->lock); 397 } 398 399 static __must_check bool zspage_write_trylock(struct zspage *zspage) 400 { 401 struct zspage_lock *zsl = &zspage->zsl; 402 403 spin_lock(&zsl->lock); 404 if (zsl->cnt == ZS_PAGE_UNLOCKED) { 405 zsl->cnt = ZS_PAGE_WRLOCKED; 406 rwsem_acquire(&zsl->dep_map, 0, 1, _RET_IP_); 407 lock_acquired(&zsl->dep_map, _RET_IP_); 408 return true; 409 } 410 411 spin_unlock(&zsl->lock); 412 return false; 413 } 414 415 static void zspage_write_unlock(struct zspage *zspage) 416 { 417 struct zspage_lock *zsl = &zspage->zsl; 418 419 rwsem_release(&zsl->dep_map, _RET_IP_); 420 421 zsl->cnt = ZS_PAGE_UNLOCKED; 422 spin_unlock(&zsl->lock); 423 } 424 425 /* huge object: pages_per_zspage == 1 && maxobj_per_zspage == 1 */ 426 static void SetZsHugePage(struct zspage *zspage) 427 { 428 zspage->huge = 1; 429 } 430 431 static bool ZsHugePage(struct zspage *zspage) 432 { 433 return zspage->huge; 434 } 435 436 #ifdef CONFIG_COMPACTION 437 static void kick_deferred_free(struct zs_pool *pool); 438 static void init_deferred_free(struct zs_pool *pool); 439 static void SetZsPageMovable(struct zs_pool *pool, struct zspage *zspage); 440 #else 441 static void kick_deferred_free(struct zs_pool *pool) {} 442 static void init_deferred_free(struct zs_pool *pool) {} 443 static void SetZsPageMovable(struct zs_pool *pool, struct zspage *zspage) {} 444 #endif 445 446 static unsigned long cache_alloc_handle(gfp_t gfp) 447 { 448 gfp = gfp & ~(__GFP_HIGHMEM | __GFP_MOVABLE); 449 450 return (unsigned long)kmem_cache_alloc(handle_cachep, gfp); 451 } 452 453 static void cache_free_handle(unsigned long handle) 454 { 455 kmem_cache_free(handle_cachep, (void *)handle); 456 } 457 458 static struct zspage *cache_alloc_zspage(gfp_t gfp) 459 { 460 gfp = gfp & ~(__GFP_HIGHMEM | __GFP_MOVABLE); 461 462 return kmem_cache_zalloc(zspage_cachep, gfp); 463 } 464 465 static void cache_free_zspage(struct zspage *zspage) 466 { 467 kmem_cache_free(zspage_cachep, zspage); 468 } 469 470 /* 471 * Pairs with READ_ONCE() in handle_to_obj(): zs_free() may read the 472 * handle locklessly, so prevent store tearing here. 473 */ 474 static void record_obj(unsigned long handle, unsigned long obj) 475 { 476 WRITE_ONCE(*(unsigned long *)handle, obj); 477 } 478 479 static inline bool __maybe_unused is_first_zpdesc(struct zpdesc *zpdesc) 480 { 481 return PagePrivate(zpdesc_page(zpdesc)); 482 } 483 484 /* Protected by class->lock */ 485 static inline int get_zspage_inuse(struct zspage *zspage) 486 { 487 return zspage->inuse; 488 } 489 490 static inline void mod_zspage_inuse(struct zspage *zspage, int val) 491 { 492 zspage->inuse += val; 493 } 494 495 static struct zpdesc *get_first_zpdesc(struct zspage *zspage) 496 { 497 struct zpdesc *first_zpdesc = zspage->first_zpdesc; 498 499 VM_BUG_ON_PAGE(!is_first_zpdesc(first_zpdesc), zpdesc_page(first_zpdesc)); 500 return first_zpdesc; 501 } 502 503 #define FIRST_OBJ_PAGE_TYPE_MASK 0xffffff 504 505 static inline unsigned int get_first_obj_offset(struct zpdesc *zpdesc) 506 { 507 VM_WARN_ON_ONCE(!PageZsmalloc(zpdesc_page(zpdesc))); 508 return zpdesc->first_obj_offset & FIRST_OBJ_PAGE_TYPE_MASK; 509 } 510 511 static inline void set_first_obj_offset(struct zpdesc *zpdesc, unsigned int offset) 512 { 513 /* With 24 bits available, we can support offsets into 16 MiB pages. */ 514 BUILD_BUG_ON(PAGE_SIZE > SZ_16M); 515 VM_WARN_ON_ONCE(!PageZsmalloc(zpdesc_page(zpdesc))); 516 VM_WARN_ON_ONCE(offset & ~FIRST_OBJ_PAGE_TYPE_MASK); 517 zpdesc->first_obj_offset &= ~FIRST_OBJ_PAGE_TYPE_MASK; 518 zpdesc->first_obj_offset |= offset & FIRST_OBJ_PAGE_TYPE_MASK; 519 } 520 521 static inline unsigned int get_freeobj(struct zspage *zspage) 522 { 523 return zspage->freeobj; 524 } 525 526 static inline void set_freeobj(struct zspage *zspage, unsigned int obj) 527 { 528 zspage->freeobj = obj; 529 } 530 531 static struct size_class *zspage_class(struct zs_pool *pool, 532 struct zspage *zspage) 533 { 534 return pool->size_class[zspage->class]; 535 } 536 537 /* 538 * zsmalloc divides the pool into various size classes where each 539 * class maintains a list of zspages where each zspage is divided 540 * into equal sized chunks. Each allocation falls into one of these 541 * classes depending on its size. This function returns index of the 542 * size class which has chunk size big enough to hold the given size. 543 */ 544 static int get_size_class_index(int size) 545 { 546 int idx = 0; 547 548 if (likely(size > ZS_MIN_ALLOC_SIZE)) 549 idx = DIV_ROUND_UP(size - ZS_MIN_ALLOC_SIZE, 550 ZS_SIZE_CLASS_DELTA); 551 552 return min_t(int, ZS_SIZE_CLASSES - 1, idx); 553 } 554 555 static struct size_class *lookup_size_class(struct zs_pool *pool, size_t size) 556 { 557 return pool->size_class[get_size_class_index(size + ZS_HANDLE_SIZE)]; 558 } 559 560 static inline void class_stat_add(struct size_class *class, int type, 561 unsigned long cnt) 562 { 563 class->stats.objs[type] += cnt; 564 } 565 566 static inline void class_stat_sub(struct size_class *class, int type, 567 unsigned long cnt) 568 { 569 class->stats.objs[type] -= cnt; 570 } 571 572 static inline unsigned long class_stat_read(struct size_class *class, int type) 573 { 574 return class->stats.objs[type]; 575 } 576 577 #ifdef CONFIG_ZSMALLOC_STAT 578 579 static void __init zs_stat_init(void) 580 { 581 if (!debugfs_initialized()) { 582 pr_warn("debugfs not available, stat dir not created\n"); 583 return; 584 } 585 586 zs_stat_root = debugfs_create_dir("zsmalloc", NULL); 587 } 588 589 static void __exit zs_stat_exit(void) 590 { 591 debugfs_remove_recursive(zs_stat_root); 592 } 593 594 static unsigned long zs_can_compact(struct size_class *class); 595 596 static int zs_stats_size_show(struct seq_file *s, void *v) 597 { 598 int i, fg; 599 struct zs_pool *pool = s->private; 600 struct size_class *class; 601 int objs_per_zspage; 602 unsigned long obj_allocated, obj_used, pages_used, freeable; 603 unsigned long total_objs = 0, total_used_objs = 0, total_pages = 0; 604 unsigned long total_freeable = 0; 605 unsigned long inuse_totals[NR_FULLNESS_GROUPS] = {0, }; 606 607 seq_printf(s, " %5s %5s %9s %9s %9s %9s %9s %9s %9s %9s %9s %9s %9s %13s %10s %10s %16s %8s\n", 608 "class", "size", "10%", "20%", "30%", "40%", 609 "50%", "60%", "70%", "80%", "90%", "99%", "100%", 610 "obj_allocated", "obj_used", "pages_used", 611 "pages_per_zspage", "freeable"); 612 613 for (i = 0; i < ZS_SIZE_CLASSES; i++) { 614 615 class = pool->size_class[i]; 616 617 if (class->index != i) 618 continue; 619 620 spin_lock(&class->lock); 621 622 seq_printf(s, " %5u %5u ", i, class->size); 623 for (fg = ZS_INUSE_RATIO_10; fg < NR_FULLNESS_GROUPS; fg++) { 624 inuse_totals[fg] += class_stat_read(class, fg); 625 seq_printf(s, "%9lu ", class_stat_read(class, fg)); 626 } 627 628 obj_allocated = class_stat_read(class, ZS_OBJS_ALLOCATED); 629 obj_used = class_stat_read(class, ZS_OBJS_INUSE); 630 freeable = zs_can_compact(class); 631 spin_unlock(&class->lock); 632 633 objs_per_zspage = class->objs_per_zspage; 634 pages_used = obj_allocated / objs_per_zspage * 635 class->pages_per_zspage; 636 637 seq_printf(s, "%13lu %10lu %10lu %16d %8lu\n", 638 obj_allocated, obj_used, pages_used, 639 class->pages_per_zspage, freeable); 640 641 total_objs += obj_allocated; 642 total_used_objs += obj_used; 643 total_pages += pages_used; 644 total_freeable += freeable; 645 } 646 647 seq_printf(s, "\n %5s %5s ", "Total", ""); 648 649 for (fg = ZS_INUSE_RATIO_10; fg < NR_FULLNESS_GROUPS; fg++) 650 seq_printf(s, "%9lu ", inuse_totals[fg]); 651 652 seq_printf(s, "%13lu %10lu %10lu %16s %8lu\n", 653 total_objs, total_used_objs, total_pages, "", 654 total_freeable); 655 656 return 0; 657 } 658 DEFINE_SHOW_ATTRIBUTE(zs_stats_size); 659 660 static void zs_pool_stat_create(struct zs_pool *pool, const char *name) 661 { 662 if (!zs_stat_root) { 663 pr_warn("no root stat dir, not creating <%s> stat dir\n", name); 664 return; 665 } 666 667 pool->stat_dentry = debugfs_create_dir(name, zs_stat_root); 668 669 debugfs_create_file("classes", S_IFREG | 0444, pool->stat_dentry, pool, 670 &zs_stats_size_fops); 671 } 672 673 static void zs_pool_stat_destroy(struct zs_pool *pool) 674 { 675 debugfs_remove_recursive(pool->stat_dentry); 676 } 677 678 #else /* CONFIG_ZSMALLOC_STAT */ 679 static void __init zs_stat_init(void) 680 { 681 } 682 683 static void __exit zs_stat_exit(void) 684 { 685 } 686 687 static inline void zs_pool_stat_create(struct zs_pool *pool, const char *name) 688 { 689 } 690 691 static inline void zs_pool_stat_destroy(struct zs_pool *pool) 692 { 693 } 694 #endif 695 696 697 /* 698 * For each size class, zspages are divided into different groups 699 * depending on their usage ratio. This function returns fullness 700 * status of the given page. 701 */ 702 static int get_fullness_group(struct size_class *class, struct zspage *zspage) 703 { 704 int inuse, objs_per_zspage, ratio; 705 706 inuse = get_zspage_inuse(zspage); 707 objs_per_zspage = class->objs_per_zspage; 708 709 if (inuse == 0) 710 return ZS_INUSE_RATIO_0; 711 if (inuse == objs_per_zspage) 712 return ZS_INUSE_RATIO_100; 713 714 ratio = 100 * inuse / objs_per_zspage; 715 /* 716 * Take integer division into consideration: a page with one inuse 717 * object out of 127 possible, will end up having 0 usage ratio, 718 * which is wrong as it belongs in ZS_INUSE_RATIO_10 fullness group. 719 */ 720 return ratio / 10 + 1; 721 } 722 723 /* 724 * Each size class maintains various freelists and zspages are assigned 725 * to one of these freelists based on the number of live objects they 726 * have. This functions inserts the given zspage into the freelist 727 * identified by <class, fullness_group>. 728 */ 729 static void insert_zspage(struct size_class *class, 730 struct zspage *zspage, 731 int fullness) 732 { 733 class_stat_add(class, fullness, 1); 734 list_add(&zspage->list, &class->fullness_list[fullness]); 735 zspage->fullness = fullness; 736 } 737 738 /* 739 * This function removes the given zspage from the freelist identified 740 * by <class, fullness_group>. 741 */ 742 static void remove_zspage(struct size_class *class, struct zspage *zspage) 743 { 744 int fullness = zspage->fullness; 745 746 VM_BUG_ON(list_empty(&class->fullness_list[fullness])); 747 748 list_del_init(&zspage->list); 749 class_stat_sub(class, fullness, 1); 750 } 751 752 /* 753 * Each size class maintains zspages in different fullness groups depending 754 * on the number of live objects they contain. When allocating or freeing 755 * objects, the fullness status of the page can change, for instance, from 756 * INUSE_RATIO_80 to INUSE_RATIO_70 when freeing an object. This function 757 * checks if such a status change has occurred for the given page and 758 * accordingly moves the page from the list of the old fullness group to that 759 * of the new fullness group. 760 */ 761 static int fix_fullness_group(struct size_class *class, struct zspage *zspage) 762 { 763 int newfg; 764 765 newfg = get_fullness_group(class, zspage); 766 if (newfg == zspage->fullness) 767 goto out; 768 769 remove_zspage(class, zspage); 770 insert_zspage(class, zspage, newfg); 771 out: 772 return newfg; 773 } 774 775 static struct zspage *get_zspage(struct zpdesc *zpdesc) 776 { 777 struct zspage *zspage = zpdesc->zspage; 778 779 BUG_ON(zspage->magic != ZSPAGE_MAGIC); 780 return zspage; 781 } 782 783 static struct zpdesc *get_next_zpdesc(struct zpdesc *zpdesc) 784 { 785 struct zspage *zspage = get_zspage(zpdesc); 786 787 if (unlikely(ZsHugePage(zspage))) 788 return NULL; 789 790 return zpdesc->next; 791 } 792 793 /** 794 * obj_to_location - get (<zpdesc>, <obj_idx>) from encoded object value 795 * @obj: the encoded object value 796 * @zpdesc: zpdesc object resides in zspage 797 * @obj_idx: object index 798 */ 799 static void obj_to_location(unsigned long obj, struct zpdesc **zpdesc, 800 unsigned int *obj_idx) 801 { 802 *zpdesc = pfn_zpdesc(obj >> ZS_OBJ_PFN_SHIFT); 803 *obj_idx = (obj & ZS_OBJ_IDX_MASK); 804 } 805 806 static void obj_to_zpdesc(unsigned long obj, struct zpdesc **zpdesc) 807 { 808 *zpdesc = pfn_zpdesc(obj >> ZS_OBJ_PFN_SHIFT); 809 } 810 811 /** 812 * location_to_obj - encode (<zpdesc>, <obj_idx>, <class_idx>) into obj value 813 * @zpdesc: zpdesc object resides in zspage 814 * @obj_idx: object index 815 * @class_idx: size class index; ignored when ZS_OBJ_CLASS_BITS == 0 816 */ 817 static unsigned long location_to_obj(struct zpdesc *zpdesc, unsigned int obj_idx, 818 unsigned int class_idx) 819 { 820 unsigned long obj; 821 822 obj = zpdesc_pfn(zpdesc) << ZS_OBJ_PFN_SHIFT; 823 obj |= (unsigned long)(class_idx & ZS_OBJ_CLASS_MASK) << ZS_OBJ_IDX_BITS; 824 obj |= obj_idx & ZS_OBJ_IDX_MASK; 825 826 return obj; 827 } 828 829 static unsigned long handle_to_obj(unsigned long handle) 830 { 831 return READ_ONCE(*(unsigned long *)handle); 832 } 833 834 static inline bool obj_allocated(struct zpdesc *zpdesc, void *obj, 835 unsigned long *phandle) 836 { 837 unsigned long handle; 838 struct zspage *zspage = get_zspage(zpdesc); 839 840 if (unlikely(ZsHugePage(zspage))) { 841 VM_BUG_ON_PAGE(!is_first_zpdesc(zpdesc), zpdesc_page(zpdesc)); 842 handle = zpdesc->handle; 843 } else 844 handle = *(unsigned long *)obj; 845 846 if (!(handle & OBJ_ALLOCATED_TAG)) 847 return false; 848 849 /* Clear all tags before returning the handle */ 850 *phandle = handle & ~OBJ_TAG_MASK; 851 return true; 852 } 853 854 static void reset_zpdesc(struct zpdesc *zpdesc) 855 { 856 struct page *page = zpdesc_page(zpdesc); 857 858 ClearPagePrivate(page); 859 zpdesc->zspage = NULL; 860 zpdesc->next = NULL; 861 /* PageZsmalloc is sticky until the page is freed to the buddy. */ 862 } 863 864 static int trylock_zspage(struct zspage *zspage) 865 { 866 struct zpdesc *cursor, *fail; 867 868 for (cursor = get_first_zpdesc(zspage); cursor != NULL; cursor = 869 get_next_zpdesc(cursor)) { 870 if (!zpdesc_trylock(cursor)) { 871 fail = cursor; 872 goto unlock; 873 } 874 } 875 876 return 1; 877 unlock: 878 for (cursor = get_first_zpdesc(zspage); cursor != fail; cursor = 879 get_next_zpdesc(cursor)) 880 zpdesc_unlock(cursor); 881 882 return 0; 883 } 884 885 /* 886 * Three free helpers, kept apart here: 887 * 888 * __free_zspage_lockless(): bare core; walks zpdescs and returns pages 889 * to the buddy allocator. Caller owns all zpdesc locks and has 890 * removed the zspage from its class list. Used by zs_free() outside 891 * class->lock so the buddy-side work does not stall the class. 892 * 893 * __free_zspage(): __free_zspage_lockless() + per-class accounting, 894 * under class->lock. Used by async_free_zspage(), the worker for 895 * zspages whose trylock_zspage() failed. 896 * 897 * free_zspage(): full wrapper - trylock zpdescs, remove from class 898 * list, call __free_zspage(); kicks deferred free on contention. 899 * Used by compaction. 900 */ 901 static inline void __free_zspage_lockless(struct zspage *zspage) 902 { 903 struct zpdesc *zpdesc, *next; 904 905 VM_BUG_ON(get_zspage_inuse(zspage)); 906 VM_BUG_ON(zspage->fullness != ZS_INUSE_RATIO_0); 907 908 next = zpdesc = get_first_zpdesc(zspage); 909 do { 910 VM_BUG_ON_PAGE(!zpdesc_is_locked(zpdesc), zpdesc_page(zpdesc)); 911 next = get_next_zpdesc(zpdesc); 912 reset_zpdesc(zpdesc); 913 zpdesc_unlock(zpdesc); 914 zpdesc_dec_zone_page_state(zpdesc); 915 zpdesc_put(zpdesc); 916 zpdesc = next; 917 } while (zpdesc != NULL); 918 919 cache_free_zspage(zspage); 920 } 921 922 static void __free_zspage(struct zs_pool *pool, struct size_class *class, 923 struct zspage *zspage) 924 { 925 assert_spin_locked(&class->lock); 926 __free_zspage_lockless(zspage); 927 class_stat_sub(class, ZS_OBJS_ALLOCATED, class->objs_per_zspage); 928 atomic_long_sub(class->pages_per_zspage, &pool->pages_allocated); 929 } 930 931 static void free_zspage(struct zs_pool *pool, struct size_class *class, 932 struct zspage *zspage) 933 { 934 VM_BUG_ON(get_zspage_inuse(zspage)); 935 VM_BUG_ON(list_empty(&zspage->list)); 936 937 /* 938 * Since zs_free couldn't be sleepable, this function cannot call 939 * lock_page. The page locks trylock_zspage got will be released 940 * by __free_zspage. 941 */ 942 if (!trylock_zspage(zspage)) { 943 kick_deferred_free(pool); 944 return; 945 } 946 947 remove_zspage(class, zspage); 948 __free_zspage(pool, class, zspage); 949 } 950 951 /* Initialize a newly allocated zspage */ 952 static void init_zspage(struct size_class *class, struct zspage *zspage) 953 { 954 unsigned int freeobj = 1; 955 unsigned long off = 0; 956 struct zpdesc *zpdesc = get_first_zpdesc(zspage); 957 958 while (zpdesc) { 959 struct zpdesc *next_zpdesc; 960 struct link_free *link; 961 void *vaddr; 962 963 set_first_obj_offset(zpdesc, off); 964 965 vaddr = kmap_local_zpdesc(zpdesc); 966 link = (struct link_free *)vaddr + off / sizeof(*link); 967 968 while ((off += class->size) < PAGE_SIZE) { 969 link->next = freeobj++ << OBJ_TAG_BITS; 970 link += class->size / sizeof(*link); 971 } 972 973 /* 974 * We now come to the last (full or partial) object on this 975 * page, which must point to the first object on the next 976 * page (if present) 977 */ 978 next_zpdesc = get_next_zpdesc(zpdesc); 979 if (next_zpdesc) { 980 link->next = freeobj++ << OBJ_TAG_BITS; 981 } else { 982 /* 983 * Reset OBJ_TAG_BITS bit to last link to tell 984 * whether it's allocated object or not. 985 */ 986 link->next = -1UL << OBJ_TAG_BITS; 987 } 988 kunmap_local(vaddr); 989 zpdesc = next_zpdesc; 990 off %= PAGE_SIZE; 991 } 992 993 set_freeobj(zspage, 0); 994 } 995 996 static void create_page_chain(struct size_class *class, struct zspage *zspage, 997 struct zpdesc *zpdescs[]) 998 { 999 int i; 1000 struct zpdesc *zpdesc; 1001 struct zpdesc *prev_zpdesc = NULL; 1002 int nr_zpdescs = class->pages_per_zspage; 1003 1004 /* 1005 * Allocate individual pages and link them together as: 1006 * 1. all pages are linked together using zpdesc->next 1007 * 2. each sub-page point to zspage using zpdesc->zspage 1008 * 1009 * we set PG_private to identify the first zpdesc (i.e. no other zpdesc 1010 * has this flag set). 1011 */ 1012 for (i = 0; i < nr_zpdescs; i++) { 1013 zpdesc = zpdescs[i]; 1014 zpdesc->zspage = zspage; 1015 zpdesc->next = NULL; 1016 if (i == 0) { 1017 zspage->first_zpdesc = zpdesc; 1018 zpdesc_set_first(zpdesc); 1019 if (unlikely(class->objs_per_zspage == 1 && 1020 class->pages_per_zspage == 1)) 1021 SetZsHugePage(zspage); 1022 } else { 1023 prev_zpdesc->next = zpdesc; 1024 } 1025 prev_zpdesc = zpdesc; 1026 } 1027 } 1028 1029 /* 1030 * Allocate a zspage for the given size class 1031 */ 1032 static struct zspage *alloc_zspage(struct zs_pool *pool, 1033 struct size_class *class, 1034 gfp_t gfp, const int nid) 1035 { 1036 int i; 1037 struct zpdesc *zpdescs[ZS_MAX_PAGES_PER_ZSPAGE]; 1038 struct zspage *zspage = cache_alloc_zspage(gfp); 1039 1040 if (!zspage) 1041 return NULL; 1042 1043 if (!IS_ENABLED(CONFIG_COMPACTION)) 1044 gfp &= ~__GFP_MOVABLE; 1045 1046 zspage->magic = ZSPAGE_MAGIC; 1047 zspage->pool = pool; 1048 zspage->class = class->index; 1049 zspage_lock_init(zspage); 1050 1051 for (i = 0; i < class->pages_per_zspage; i++) { 1052 struct zpdesc *zpdesc; 1053 1054 zpdesc = alloc_zpdesc(gfp, nid); 1055 if (!zpdesc) { 1056 while (--i >= 0) { 1057 zpdesc_dec_zone_page_state(zpdescs[i]); 1058 free_zpdesc(zpdescs[i]); 1059 } 1060 cache_free_zspage(zspage); 1061 return NULL; 1062 } 1063 __zpdesc_set_zsmalloc(zpdesc); 1064 1065 zpdesc_inc_zone_page_state(zpdesc); 1066 zpdescs[i] = zpdesc; 1067 } 1068 1069 create_page_chain(class, zspage, zpdescs); 1070 init_zspage(class, zspage); 1071 1072 return zspage; 1073 } 1074 1075 static struct zspage *find_get_zspage(struct size_class *class) 1076 { 1077 int i; 1078 struct zspage *zspage; 1079 1080 for (i = ZS_INUSE_RATIO_99; i >= ZS_INUSE_RATIO_0; i--) { 1081 zspage = list_first_entry_or_null(&class->fullness_list[i], 1082 struct zspage, list); 1083 if (zspage) 1084 break; 1085 } 1086 1087 return zspage; 1088 } 1089 1090 static bool can_merge(struct size_class *prev, int pages_per_zspage, 1091 int objs_per_zspage) 1092 { 1093 if (prev->pages_per_zspage == pages_per_zspage && 1094 prev->objs_per_zspage == objs_per_zspage) 1095 return true; 1096 1097 return false; 1098 } 1099 1100 static bool zspage_full(struct size_class *class, struct zspage *zspage) 1101 { 1102 return get_zspage_inuse(zspage) == class->objs_per_zspage; 1103 } 1104 1105 static bool zspage_empty(struct zspage *zspage) 1106 { 1107 return get_zspage_inuse(zspage) == 0; 1108 } 1109 1110 /** 1111 * zs_lookup_class_index() - Returns index of the zsmalloc &size_class 1112 * that hold objects of the provided size. 1113 * @pool: zsmalloc pool to use 1114 * @size: object size 1115 * 1116 * Context: Any context. 1117 * 1118 * Return: the index of the zsmalloc &size_class that hold objects of the 1119 * provided size. 1120 */ 1121 unsigned int zs_lookup_class_index(struct zs_pool *pool, unsigned int size) 1122 { 1123 struct size_class *class; 1124 1125 class = lookup_size_class(pool, size); 1126 1127 return class->index; 1128 } 1129 EXPORT_SYMBOL_GPL(zs_lookup_class_index); 1130 1131 unsigned long zs_get_total_pages(struct zs_pool *pool) 1132 { 1133 return atomic_long_read(&pool->pages_allocated); 1134 } 1135 EXPORT_SYMBOL_GPL(zs_get_total_pages); 1136 1137 void *zs_obj_read_begin(struct zs_pool *pool, unsigned long handle, 1138 size_t mem_len, void *local_copy) 1139 { 1140 struct zspage *zspage; 1141 struct zpdesc *zpdesc; 1142 unsigned long obj, off; 1143 unsigned int obj_idx; 1144 struct size_class *class; 1145 void *addr; 1146 1147 /* Guarantee we can get zspage from handle safely */ 1148 read_lock(&pool->lock); 1149 obj = handle_to_obj(handle); 1150 obj_to_location(obj, &zpdesc, &obj_idx); 1151 zspage = get_zspage(zpdesc); 1152 1153 /* Make sure migration doesn't move any pages in this zspage */ 1154 zspage_read_lock(zspage); 1155 read_unlock(&pool->lock); 1156 1157 class = zspage_class(pool, zspage); 1158 off = offset_in_page(class->size * obj_idx); 1159 1160 if (!ZsHugePage(zspage)) 1161 off += ZS_HANDLE_SIZE; 1162 1163 if (off + mem_len <= PAGE_SIZE) { 1164 /* this object is contained entirely within a page */ 1165 addr = kmap_local_zpdesc(zpdesc); 1166 addr += off; 1167 } else { 1168 size_t sizes[2]; 1169 1170 /* this object spans two pages */ 1171 sizes[0] = PAGE_SIZE - off; 1172 sizes[1] = mem_len - sizes[0]; 1173 addr = local_copy; 1174 1175 memcpy_from_page(addr, zpdesc_page(zpdesc), 1176 off, sizes[0]); 1177 zpdesc = get_next_zpdesc(zpdesc); 1178 memcpy_from_page(addr + sizes[0], 1179 zpdesc_page(zpdesc), 1180 0, sizes[1]); 1181 } 1182 1183 return addr; 1184 } 1185 EXPORT_SYMBOL_GPL(zs_obj_read_begin); 1186 1187 void zs_obj_read_end(struct zs_pool *pool, unsigned long handle, 1188 size_t mem_len, void *handle_mem) 1189 { 1190 struct zspage *zspage; 1191 struct zpdesc *zpdesc; 1192 unsigned long obj, off; 1193 unsigned int obj_idx; 1194 struct size_class *class; 1195 1196 obj = handle_to_obj(handle); 1197 obj_to_location(obj, &zpdesc, &obj_idx); 1198 zspage = get_zspage(zpdesc); 1199 class = zspage_class(pool, zspage); 1200 off = offset_in_page(class->size * obj_idx); 1201 1202 if (!ZsHugePage(zspage)) 1203 off += ZS_HANDLE_SIZE; 1204 1205 if (off + mem_len <= PAGE_SIZE) { 1206 handle_mem -= off; 1207 kunmap_local(handle_mem); 1208 } 1209 1210 zspage_read_unlock(zspage); 1211 } 1212 EXPORT_SYMBOL_GPL(zs_obj_read_end); 1213 1214 void zs_obj_read_sg_begin(struct zs_pool *pool, unsigned long handle, 1215 struct scatterlist *sg, size_t mem_len) 1216 { 1217 struct zspage *zspage; 1218 struct zpdesc *zpdesc; 1219 unsigned long obj, off; 1220 unsigned int obj_idx; 1221 struct size_class *class; 1222 1223 /* Guarantee we can get zspage from handle safely */ 1224 read_lock(&pool->lock); 1225 obj = handle_to_obj(handle); 1226 obj_to_location(obj, &zpdesc, &obj_idx); 1227 zspage = get_zspage(zpdesc); 1228 1229 /* Make sure migration doesn't move any pages in this zspage */ 1230 zspage_read_lock(zspage); 1231 read_unlock(&pool->lock); 1232 1233 class = zspage_class(pool, zspage); 1234 off = offset_in_page(class->size * obj_idx); 1235 1236 if (!ZsHugePage(zspage)) 1237 off += ZS_HANDLE_SIZE; 1238 1239 if (off + mem_len <= PAGE_SIZE) { 1240 /* this object is contained entirely within a page */ 1241 sg_init_table(sg, 1); 1242 sg_set_page(sg, zpdesc_page(zpdesc), mem_len, off); 1243 } else { 1244 size_t sizes[2]; 1245 1246 /* this object spans two pages */ 1247 sizes[0] = PAGE_SIZE - off; 1248 sizes[1] = mem_len - sizes[0]; 1249 1250 sg_init_table(sg, 2); 1251 sg_set_page(sg, zpdesc_page(zpdesc), sizes[0], off); 1252 1253 zpdesc = get_next_zpdesc(zpdesc); 1254 sg = sg_next(sg); 1255 1256 sg_set_page(sg, zpdesc_page(zpdesc), sizes[1], 0); 1257 } 1258 } 1259 EXPORT_SYMBOL_GPL(zs_obj_read_sg_begin); 1260 1261 void zs_obj_read_sg_end(struct zs_pool *pool, unsigned long handle) 1262 { 1263 struct zspage *zspage; 1264 struct zpdesc *zpdesc; 1265 unsigned long obj; 1266 unsigned int obj_idx; 1267 1268 obj = handle_to_obj(handle); 1269 obj_to_location(obj, &zpdesc, &obj_idx); 1270 zspage = get_zspage(zpdesc); 1271 1272 zspage_read_unlock(zspage); 1273 } 1274 EXPORT_SYMBOL_GPL(zs_obj_read_sg_end); 1275 1276 void zs_obj_write(struct zs_pool *pool, unsigned long handle, 1277 void *handle_mem, size_t mem_len) 1278 { 1279 struct zspage *zspage; 1280 struct zpdesc *zpdesc; 1281 unsigned long obj, off; 1282 unsigned int obj_idx; 1283 struct size_class *class; 1284 1285 /* Guarantee we can get zspage from handle safely */ 1286 read_lock(&pool->lock); 1287 obj = handle_to_obj(handle); 1288 obj_to_location(obj, &zpdesc, &obj_idx); 1289 zspage = get_zspage(zpdesc); 1290 1291 /* Make sure migration doesn't move any pages in this zspage */ 1292 zspage_read_lock(zspage); 1293 read_unlock(&pool->lock); 1294 1295 class = zspage_class(pool, zspage); 1296 off = offset_in_page(class->size * obj_idx); 1297 1298 if (!ZsHugePage(zspage)) 1299 off += ZS_HANDLE_SIZE; 1300 1301 if (off + mem_len <= PAGE_SIZE) { 1302 /* this object is contained entirely within a page */ 1303 void *dst = kmap_local_zpdesc(zpdesc); 1304 1305 memcpy(dst + off, handle_mem, mem_len); 1306 kunmap_local(dst); 1307 } else { 1308 /* this object spans two pages */ 1309 size_t sizes[2]; 1310 1311 sizes[0] = PAGE_SIZE - off; 1312 sizes[1] = mem_len - sizes[0]; 1313 1314 memcpy_to_page(zpdesc_page(zpdesc), off, 1315 handle_mem, sizes[0]); 1316 zpdesc = get_next_zpdesc(zpdesc); 1317 memcpy_to_page(zpdesc_page(zpdesc), 0, 1318 handle_mem + sizes[0], sizes[1]); 1319 } 1320 1321 zspage_read_unlock(zspage); 1322 } 1323 EXPORT_SYMBOL_GPL(zs_obj_write); 1324 1325 /** 1326 * zs_huge_class_size() - Returns the size (in bytes) of the first huge 1327 * zsmalloc &size_class. 1328 * @pool: zsmalloc pool to use 1329 * 1330 * The function returns the size of the first huge class - any object of equal 1331 * or bigger size will be stored in zspage consisting of a single physical 1332 * page. 1333 * 1334 * Context: Any context. 1335 * 1336 * Return: the size (in bytes) of the first huge zsmalloc &size_class. 1337 */ 1338 size_t zs_huge_class_size(struct zs_pool *pool) 1339 { 1340 return huge_class_size; 1341 } 1342 EXPORT_SYMBOL_GPL(zs_huge_class_size); 1343 1344 static unsigned long obj_malloc(struct zs_pool *pool, 1345 struct zspage *zspage, unsigned long handle) 1346 { 1347 int i, nr_zpdesc, offset; 1348 unsigned long obj; 1349 struct link_free *link; 1350 struct size_class *class; 1351 1352 struct zpdesc *m_zpdesc; 1353 unsigned long m_offset; 1354 void *vaddr; 1355 1356 class = pool->size_class[zspage->class]; 1357 obj = get_freeobj(zspage); 1358 1359 offset = obj * class->size; 1360 nr_zpdesc = offset >> PAGE_SHIFT; 1361 m_offset = offset_in_page(offset); 1362 m_zpdesc = get_first_zpdesc(zspage); 1363 1364 for (i = 0; i < nr_zpdesc; i++) 1365 m_zpdesc = get_next_zpdesc(m_zpdesc); 1366 1367 vaddr = kmap_local_zpdesc(m_zpdesc); 1368 link = (struct link_free *)vaddr + m_offset / sizeof(*link); 1369 set_freeobj(zspage, link->next >> OBJ_TAG_BITS); 1370 if (likely(!ZsHugePage(zspage))) 1371 /* record handle in the header of allocated chunk */ 1372 link->handle = handle | OBJ_ALLOCATED_TAG; 1373 else 1374 zspage->first_zpdesc->handle = handle | OBJ_ALLOCATED_TAG; 1375 1376 kunmap_local(vaddr); 1377 mod_zspage_inuse(zspage, 1); 1378 1379 obj = location_to_obj(m_zpdesc, obj, zspage->class); 1380 record_obj(handle, obj); 1381 1382 return obj; 1383 } 1384 1385 1386 /** 1387 * zs_malloc - Allocate block of given size from pool. 1388 * @pool: pool to allocate from 1389 * @size: size of block to allocate 1390 * @gfp: gfp flags when allocating object 1391 * @nid: The preferred node id to allocate new zspage (if needed) 1392 * 1393 * On success, handle to the allocated object is returned, 1394 * otherwise an ERR_PTR(). 1395 * Allocation requests with size > ZS_MAX_ALLOC_SIZE will fail. 1396 */ 1397 unsigned long zs_malloc(struct zs_pool *pool, size_t size, gfp_t gfp, 1398 const int nid) 1399 { 1400 unsigned long handle; 1401 struct size_class *class; 1402 int newfg; 1403 struct zspage *zspage; 1404 1405 if (unlikely(!size)) 1406 return (unsigned long)ERR_PTR(-EINVAL); 1407 1408 if (unlikely(size > ZS_MAX_ALLOC_SIZE)) 1409 return (unsigned long)ERR_PTR(-ENOSPC); 1410 1411 handle = cache_alloc_handle(gfp); 1412 if (!handle) 1413 return (unsigned long)ERR_PTR(-ENOMEM); 1414 1415 class = lookup_size_class(pool, size); 1416 1417 /* class->lock effectively protects the zpage migration */ 1418 spin_lock(&class->lock); 1419 zspage = find_get_zspage(class); 1420 if (likely(zspage)) { 1421 obj_malloc(pool, zspage, handle); 1422 /* Now move the zspage to another fullness group, if required */ 1423 fix_fullness_group(class, zspage); 1424 class_stat_add(class, ZS_OBJS_INUSE, 1); 1425 1426 goto out; 1427 } 1428 1429 spin_unlock(&class->lock); 1430 1431 zspage = alloc_zspage(pool, class, gfp, nid); 1432 if (!zspage) { 1433 cache_free_handle(handle); 1434 return (unsigned long)ERR_PTR(-ENOMEM); 1435 } 1436 1437 spin_lock(&class->lock); 1438 obj_malloc(pool, zspage, handle); 1439 newfg = get_fullness_group(class, zspage); 1440 insert_zspage(class, zspage, newfg); 1441 atomic_long_add(class->pages_per_zspage, &pool->pages_allocated); 1442 class_stat_add(class, ZS_OBJS_ALLOCATED, class->objs_per_zspage); 1443 class_stat_add(class, ZS_OBJS_INUSE, 1); 1444 1445 /* We completely set up zspage so mark them as movable */ 1446 SetZsPageMovable(pool, zspage); 1447 out: 1448 spin_unlock(&class->lock); 1449 1450 return handle; 1451 } 1452 EXPORT_SYMBOL_GPL(zs_malloc); 1453 1454 static void obj_free(int class_size, unsigned long obj) 1455 { 1456 struct link_free *link; 1457 struct zspage *zspage; 1458 struct zpdesc *f_zpdesc; 1459 unsigned long f_offset; 1460 unsigned int f_objidx; 1461 void *vaddr; 1462 1463 1464 obj_to_location(obj, &f_zpdesc, &f_objidx); 1465 f_offset = offset_in_page(class_size * f_objidx); 1466 zspage = get_zspage(f_zpdesc); 1467 1468 vaddr = kmap_local_zpdesc(f_zpdesc); 1469 link = (struct link_free *)(vaddr + f_offset); 1470 1471 /* Insert this object in containing zspage's freelist */ 1472 if (likely(!ZsHugePage(zspage))) 1473 link->next = get_freeobj(zspage) << OBJ_TAG_BITS; 1474 else 1475 f_zpdesc->handle = 0; 1476 set_freeobj(zspage, f_objidx); 1477 1478 kunmap_local(vaddr); 1479 mod_zspage_inuse(zspage, -1); 1480 } 1481 1482 #if (ZS_OBJ_CLASS_BITS > 0) || defined(CONFIG_COMPACTION) 1483 /* Folds to 0 when ZS_OBJ_CLASS_BITS == 0; no ifdef needed at callers. */ 1484 static unsigned int obj_to_class_idx(unsigned long obj) 1485 { 1486 return (obj >> ZS_OBJ_IDX_BITS) & ZS_OBJ_CLASS_MASK; 1487 } 1488 #endif 1489 1490 /* 1491 * Resolve @handle to its zspage / size_class and acquire class->lock. 1492 * 1493 * When class_idx is encoded in obj (ZS_OBJ_CLASS_BITS > 0), it is 1494 * invariant under page migration, so the handle can be read locklessly 1495 * to pick the size_class. Once class->lock is held migration is 1496 * blocked and the handle is re-read to obtain a stable PFN. 1497 * 1498 * Otherwise (32-bit, or 64-bit fallback paths like UML where the 1499 * encoding is disabled), fall back to pool->lock for the lookup. 1500 */ 1501 #if ZS_OBJ_CLASS_BITS > 0 1502 static inline void obj_class_get_and_lock(struct zs_pool *pool, unsigned long handle, 1503 unsigned long *objp, struct zspage **zspagep, 1504 struct size_class **classp) 1505 __acquires(&(*classp)->lock) 1506 { 1507 struct zpdesc *f_zpdesc; 1508 unsigned long obj; 1509 1510 obj = handle_to_obj(handle); 1511 *classp = pool->size_class[obj_to_class_idx(obj)]; 1512 spin_lock(&(*classp)->lock); 1513 /* Re-read under class->lock: PFN is now stable vs migration. */ 1514 obj = handle_to_obj(handle); 1515 obj_to_zpdesc(obj, &f_zpdesc); 1516 *zspagep = get_zspage(f_zpdesc); 1517 *objp = obj; 1518 } 1519 #else 1520 static inline void obj_class_get_and_lock(struct zs_pool *pool, unsigned long handle, 1521 unsigned long *objp, struct zspage **zspagep, 1522 struct size_class **classp) 1523 __acquires(&(*classp)->lock) 1524 { 1525 struct zpdesc *f_zpdesc; 1526 unsigned long obj; 1527 1528 read_lock(&pool->lock); 1529 obj = handle_to_obj(handle); 1530 obj_to_zpdesc(obj, &f_zpdesc); 1531 *zspagep = get_zspage(f_zpdesc); 1532 *classp = zspage_class(pool, *zspagep); 1533 spin_lock(&(*classp)->lock); 1534 read_unlock(&pool->lock); 1535 *objp = obj; 1536 } 1537 #endif 1538 1539 void zs_free(struct zs_pool *pool, unsigned long handle) 1540 { 1541 struct zspage *zspage; 1542 unsigned long obj; 1543 struct size_class *class; 1544 int fullness; 1545 struct zspage *zspage_to_free = NULL; 1546 1547 if (IS_ERR_OR_NULL((void *)handle)) 1548 return; 1549 1550 obj_class_get_and_lock(pool, handle, &obj, &zspage, &class); 1551 1552 class_stat_sub(class, ZS_OBJS_INUSE, 1); 1553 obj_free(class->size, obj); 1554 1555 fullness = fix_fullness_group(class, zspage); 1556 if (fullness == ZS_INUSE_RATIO_0) { 1557 if (trylock_zspage(zspage)) { 1558 remove_zspage(class, zspage); 1559 class_stat_sub(class, ZS_OBJS_ALLOCATED, 1560 class->objs_per_zspage); 1561 zspage_to_free = zspage; 1562 } else { 1563 kick_deferred_free(pool); 1564 } 1565 } 1566 1567 spin_unlock(&class->lock); 1568 1569 if (zspage_to_free) { 1570 __free_zspage_lockless(zspage_to_free); 1571 atomic_long_sub(class->pages_per_zspage, &pool->pages_allocated); 1572 } 1573 cache_free_handle(handle); 1574 } 1575 EXPORT_SYMBOL_GPL(zs_free); 1576 1577 static void zs_object_copy(struct size_class *class, unsigned long dst, 1578 unsigned long src) 1579 { 1580 struct zpdesc *s_zpdesc, *d_zpdesc; 1581 unsigned int s_objidx, d_objidx; 1582 unsigned long s_off, d_off; 1583 void *s_addr, *d_addr; 1584 int s_size, d_size, size; 1585 int written = 0; 1586 1587 s_size = d_size = class->size; 1588 1589 obj_to_location(src, &s_zpdesc, &s_objidx); 1590 obj_to_location(dst, &d_zpdesc, &d_objidx); 1591 1592 s_off = offset_in_page(class->size * s_objidx); 1593 d_off = offset_in_page(class->size * d_objidx); 1594 1595 if (s_off + class->size > PAGE_SIZE) 1596 s_size = PAGE_SIZE - s_off; 1597 1598 if (d_off + class->size > PAGE_SIZE) 1599 d_size = PAGE_SIZE - d_off; 1600 1601 s_addr = kmap_local_zpdesc(s_zpdesc); 1602 d_addr = kmap_local_zpdesc(d_zpdesc); 1603 1604 while (1) { 1605 size = min(s_size, d_size); 1606 memcpy(d_addr + d_off, s_addr + s_off, size); 1607 written += size; 1608 1609 if (written == class->size) 1610 break; 1611 1612 s_off += size; 1613 s_size -= size; 1614 d_off += size; 1615 d_size -= size; 1616 1617 /* 1618 * Calling kunmap_local(d_addr) is necessary. kunmap_local() 1619 * calls must occurs in reverse order of calls to kmap_local_page(). 1620 * So, to call kunmap_local(s_addr) we should first call 1621 * kunmap_local(d_addr). For more details see 1622 * Documentation/mm/highmem.rst. 1623 */ 1624 if (s_off >= PAGE_SIZE) { 1625 kunmap_local(d_addr); 1626 kunmap_local(s_addr); 1627 s_zpdesc = get_next_zpdesc(s_zpdesc); 1628 s_addr = kmap_local_zpdesc(s_zpdesc); 1629 d_addr = kmap_local_zpdesc(d_zpdesc); 1630 s_size = class->size - written; 1631 s_off = 0; 1632 } 1633 1634 if (d_off >= PAGE_SIZE) { 1635 kunmap_local(d_addr); 1636 d_zpdesc = get_next_zpdesc(d_zpdesc); 1637 d_addr = kmap_local_zpdesc(d_zpdesc); 1638 d_size = class->size - written; 1639 d_off = 0; 1640 } 1641 } 1642 1643 kunmap_local(d_addr); 1644 kunmap_local(s_addr); 1645 } 1646 1647 /* 1648 * Find alloced object in zspage from index object and 1649 * return handle. 1650 */ 1651 static unsigned long find_alloced_obj(struct size_class *class, 1652 struct zpdesc *zpdesc, int *obj_idx) 1653 { 1654 unsigned int offset; 1655 int index = *obj_idx; 1656 unsigned long handle = 0; 1657 void *addr = kmap_local_zpdesc(zpdesc); 1658 1659 offset = get_first_obj_offset(zpdesc); 1660 offset += class->size * index; 1661 1662 while (offset < PAGE_SIZE) { 1663 if (obj_allocated(zpdesc, addr + offset, &handle)) 1664 break; 1665 1666 offset += class->size; 1667 index++; 1668 } 1669 1670 kunmap_local(addr); 1671 1672 *obj_idx = index; 1673 1674 return handle; 1675 } 1676 1677 static void migrate_zspage(struct zs_pool *pool, struct zspage *src_zspage, 1678 struct zspage *dst_zspage) 1679 { 1680 unsigned long used_obj, free_obj; 1681 unsigned long handle; 1682 int obj_idx = 0; 1683 struct zpdesc *s_zpdesc = get_first_zpdesc(src_zspage); 1684 struct size_class *class = pool->size_class[src_zspage->class]; 1685 1686 while (1) { 1687 handle = find_alloced_obj(class, s_zpdesc, &obj_idx); 1688 if (!handle) { 1689 s_zpdesc = get_next_zpdesc(s_zpdesc); 1690 if (!s_zpdesc) 1691 break; 1692 obj_idx = 0; 1693 continue; 1694 } 1695 1696 used_obj = handle_to_obj(handle); 1697 free_obj = obj_malloc(pool, dst_zspage, handle); 1698 zs_object_copy(class, free_obj, used_obj); 1699 obj_idx++; 1700 obj_free(class->size, used_obj); 1701 1702 /* Stop if there is no more space */ 1703 if (zspage_full(class, dst_zspage)) 1704 break; 1705 1706 /* Stop if there are no more objects to migrate */ 1707 if (zspage_empty(src_zspage)) 1708 break; 1709 } 1710 } 1711 1712 static struct zspage *isolate_src_zspage(struct size_class *class) 1713 { 1714 struct zspage *zspage; 1715 int fg; 1716 1717 for (fg = ZS_INUSE_RATIO_10; fg <= ZS_INUSE_RATIO_99; fg++) { 1718 zspage = list_first_entry_or_null(&class->fullness_list[fg], 1719 struct zspage, list); 1720 if (zspage) { 1721 remove_zspage(class, zspage); 1722 return zspage; 1723 } 1724 } 1725 1726 return zspage; 1727 } 1728 1729 static struct zspage *isolate_dst_zspage(struct size_class *class) 1730 { 1731 struct zspage *zspage; 1732 int fg; 1733 1734 for (fg = ZS_INUSE_RATIO_99; fg >= ZS_INUSE_RATIO_10; fg--) { 1735 zspage = list_first_entry_or_null(&class->fullness_list[fg], 1736 struct zspage, list); 1737 if (zspage) { 1738 remove_zspage(class, zspage); 1739 return zspage; 1740 } 1741 } 1742 1743 return zspage; 1744 } 1745 1746 /* 1747 * putback_zspage - add @zspage into right class's fullness list 1748 * @class: destination class 1749 * @zspage: target page 1750 * 1751 * Return @zspage's fullness status 1752 */ 1753 static int putback_zspage(struct size_class *class, struct zspage *zspage) 1754 { 1755 int fullness; 1756 1757 fullness = get_fullness_group(class, zspage); 1758 insert_zspage(class, zspage, fullness); 1759 1760 return fullness; 1761 } 1762 1763 #ifdef CONFIG_COMPACTION 1764 /* 1765 * To prevent zspage destroy during migration, zspage freeing should 1766 * hold locks of all pages in the zspage. 1767 */ 1768 static void lock_zspage(struct zspage *zspage) 1769 { 1770 struct zpdesc *curr_zpdesc, *zpdesc; 1771 1772 /* 1773 * Pages we haven't locked yet can be migrated off the list while we're 1774 * trying to lock them, so we need to be careful and only attempt to 1775 * lock each page under zspage_read_lock(). Otherwise, the page we lock 1776 * may no longer belong to the zspage. This means that we may wait for 1777 * the wrong page to unlock, so we must take a reference to the page 1778 * prior to waiting for it to unlock outside zspage_read_lock(). 1779 */ 1780 while (1) { 1781 zspage_read_lock(zspage); 1782 zpdesc = get_first_zpdesc(zspage); 1783 if (zpdesc_trylock(zpdesc)) 1784 break; 1785 zpdesc_get(zpdesc); 1786 zspage_read_unlock(zspage); 1787 zpdesc_wait_locked(zpdesc); 1788 zpdesc_put(zpdesc); 1789 } 1790 1791 curr_zpdesc = zpdesc; 1792 while ((zpdesc = get_next_zpdesc(curr_zpdesc))) { 1793 if (zpdesc_trylock(zpdesc)) { 1794 curr_zpdesc = zpdesc; 1795 } else { 1796 zpdesc_get(zpdesc); 1797 zspage_read_unlock(zspage); 1798 zpdesc_wait_locked(zpdesc); 1799 zpdesc_put(zpdesc); 1800 zspage_read_lock(zspage); 1801 } 1802 } 1803 zspage_read_unlock(zspage); 1804 } 1805 1806 static void replace_sub_page(struct size_class *class, struct zspage *zspage, 1807 struct zpdesc *newzpdesc, struct zpdesc *oldzpdesc) 1808 { 1809 struct zpdesc *zpdesc; 1810 struct zpdesc *zpdescs[ZS_MAX_PAGES_PER_ZSPAGE] = {NULL, }; 1811 unsigned int first_obj_offset; 1812 int idx = 0; 1813 1814 zpdesc = get_first_zpdesc(zspage); 1815 do { 1816 if (zpdesc == oldzpdesc) 1817 zpdescs[idx] = newzpdesc; 1818 else 1819 zpdescs[idx] = zpdesc; 1820 idx++; 1821 } while ((zpdesc = get_next_zpdesc(zpdesc)) != NULL); 1822 1823 create_page_chain(class, zspage, zpdescs); 1824 first_obj_offset = get_first_obj_offset(oldzpdesc); 1825 set_first_obj_offset(newzpdesc, first_obj_offset); 1826 if (unlikely(ZsHugePage(zspage))) 1827 newzpdesc->handle = oldzpdesc->handle; 1828 __zpdesc_set_movable(newzpdesc); 1829 } 1830 1831 static bool zs_page_isolate(struct page *page, isolate_mode_t mode) 1832 { 1833 /* 1834 * Page is locked so zspage can't be destroyed concurrently 1835 * (see free_zspage()). But if the page was already destroyed 1836 * (see reset_zpdesc()), refuse isolation here. 1837 */ 1838 return page_zpdesc(page)->zspage; 1839 } 1840 1841 static int zs_page_migrate(struct page *newpage, struct page *page, 1842 enum migrate_mode mode) 1843 { 1844 struct zs_pool *pool; 1845 struct size_class *class; 1846 struct zspage *zspage; 1847 struct zpdesc *dummy; 1848 struct zpdesc *newzpdesc = page_zpdesc(newpage); 1849 struct zpdesc *zpdesc = page_zpdesc(page); 1850 void *s_addr, *d_addr, *addr; 1851 unsigned int offset; 1852 unsigned long handle; 1853 unsigned long old_obj, new_obj; 1854 unsigned int obj_idx; 1855 1856 /* 1857 * TODO: nothing prevents a zspage from getting destroyed while 1858 * it is isolated for migration, as the page lock is temporarily 1859 * dropped after zs_page_isolate() succeeded: we should rework that 1860 * and defer destroying such pages once they are un-isolated (putback) 1861 * instead. 1862 */ 1863 if (!zpdesc->zspage) 1864 return 0; 1865 1866 /* The page is locked, so this pointer must remain valid */ 1867 zspage = get_zspage(zpdesc); 1868 pool = zspage->pool; 1869 1870 /* 1871 * The pool migrate_lock protects against races between zpage migration 1872 * and zs_free(), but only when ZS_OBJ_CLASS_BITS does not apply. 1873 */ 1874 write_lock(&pool->lock); 1875 class = zspage_class(pool, zspage); 1876 1877 /* 1878 * the class lock protects zpage alloc/free in the zspage. 1879 */ 1880 spin_lock(&class->lock); 1881 /* the zspage write_lock protects zpage access via zs_obj_read/write() */ 1882 if (!zspage_write_trylock(zspage)) { 1883 spin_unlock(&class->lock); 1884 write_unlock(&pool->lock); 1885 /* 1886 * Return -EBUSY but not -EAGAIN: the zspage's reader-lock 1887 * owner may hold the lock for an unbounded duration due to a 1888 * slow decompression or reader-lock owner preemption. 1889 * Since migration retries are bounded by 1890 * NR_MAX_MIGRATE_PAGES_RETRY and performed with virtually no 1891 * delay between attempts, there is no guarantee the lock will 1892 * be released in time for a retry to succeed. 1893 * -EAGAIN implies "try again soon", which does not hold here. 1894 * -EBUSY more accurately conveys "resource is occupied, 1895 * migration cannot proceed". 1896 */ 1897 return -EBUSY; 1898 } 1899 1900 /* We're committed, tell the world that this is a Zsmalloc page. */ 1901 __zpdesc_set_zsmalloc(newzpdesc); 1902 1903 offset = get_first_obj_offset(zpdesc); 1904 s_addr = kmap_local_zpdesc(zpdesc); 1905 1906 /* 1907 * Here, any user cannot access all objects in the zspage so let's move. 1908 */ 1909 d_addr = kmap_local_zpdesc(newzpdesc); 1910 copy_page(d_addr, s_addr); 1911 kmsan_copy_page_meta(zpdesc_page(newzpdesc), zpdesc_page(zpdesc)); 1912 kunmap_local(d_addr); 1913 1914 for (addr = s_addr + offset; addr < s_addr + PAGE_SIZE; 1915 addr += class->size) { 1916 if (obj_allocated(zpdesc, addr, &handle)) { 1917 1918 old_obj = handle_to_obj(handle); 1919 obj_to_location(old_obj, &dummy, &obj_idx); 1920 new_obj = location_to_obj(newzpdesc, obj_idx, 1921 obj_to_class_idx(old_obj)); 1922 record_obj(handle, new_obj); 1923 } 1924 } 1925 kunmap_local(s_addr); 1926 1927 replace_sub_page(class, zspage, newzpdesc, zpdesc); 1928 /* 1929 * Since we complete the data copy and set up new zspage structure, 1930 * it's okay to release migration_lock. 1931 */ 1932 zspage_write_unlock(zspage); 1933 spin_unlock(&class->lock); 1934 write_unlock(&pool->lock); 1935 1936 zpdesc_get(newzpdesc); 1937 if (zpdesc_zone(newzpdesc) != zpdesc_zone(zpdesc)) { 1938 zpdesc_dec_zone_page_state(zpdesc); 1939 zpdesc_inc_zone_page_state(newzpdesc); 1940 } 1941 1942 reset_zpdesc(zpdesc); 1943 zpdesc_put(zpdesc); 1944 1945 return 0; 1946 } 1947 1948 static void zs_page_putback(struct page *page) 1949 { 1950 } 1951 1952 const struct movable_operations zsmalloc_mops = { 1953 .isolate_page = zs_page_isolate, 1954 .migrate_page = zs_page_migrate, 1955 .putback_page = zs_page_putback, 1956 }; 1957 1958 /* 1959 * Caller should hold page_lock of all pages in the zspage 1960 * In here, we cannot use zspage meta data. 1961 */ 1962 static void async_free_zspage(struct work_struct *work) 1963 { 1964 int i; 1965 struct size_class *class; 1966 struct zspage *zspage, *tmp; 1967 LIST_HEAD(free_pages); 1968 struct zs_pool *pool = container_of(work, struct zs_pool, 1969 free_work); 1970 1971 for (i = 0; i < ZS_SIZE_CLASSES; i++) { 1972 class = pool->size_class[i]; 1973 if (class->index != i) 1974 continue; 1975 1976 spin_lock(&class->lock); 1977 list_splice_init(&class->fullness_list[ZS_INUSE_RATIO_0], 1978 &free_pages); 1979 spin_unlock(&class->lock); 1980 } 1981 1982 list_for_each_entry_safe(zspage, tmp, &free_pages, list) { 1983 list_del(&zspage->list); 1984 lock_zspage(zspage); 1985 1986 class = zspage_class(pool, zspage); 1987 spin_lock(&class->lock); 1988 class_stat_sub(class, ZS_INUSE_RATIO_0, 1); 1989 __free_zspage(pool, class, zspage); 1990 spin_unlock(&class->lock); 1991 } 1992 }; 1993 1994 static void kick_deferred_free(struct zs_pool *pool) 1995 { 1996 schedule_work(&pool->free_work); 1997 } 1998 1999 static void zs_flush_migration(struct zs_pool *pool) 2000 { 2001 flush_work(&pool->free_work); 2002 } 2003 2004 static void init_deferred_free(struct zs_pool *pool) 2005 { 2006 INIT_WORK(&pool->free_work, async_free_zspage); 2007 } 2008 2009 static void SetZsPageMovable(struct zs_pool *pool, struct zspage *zspage) 2010 { 2011 struct zpdesc *zpdesc = get_first_zpdesc(zspage); 2012 2013 do { 2014 WARN_ON(!zpdesc_trylock(zpdesc)); 2015 __zpdesc_set_movable(zpdesc); 2016 zpdesc_unlock(zpdesc); 2017 } while ((zpdesc = get_next_zpdesc(zpdesc)) != NULL); 2018 } 2019 #else 2020 static inline void zs_flush_migration(struct zs_pool *pool) { } 2021 #endif 2022 2023 /* 2024 * 2025 * Based on the number of unused allocated objects calculate 2026 * and return the number of pages that we can free. 2027 */ 2028 static unsigned long zs_can_compact(struct size_class *class) 2029 { 2030 unsigned long obj_wasted; 2031 unsigned long obj_allocated = class_stat_read(class, ZS_OBJS_ALLOCATED); 2032 unsigned long obj_used = class_stat_read(class, ZS_OBJS_INUSE); 2033 2034 if (obj_allocated <= obj_used) 2035 return 0; 2036 2037 obj_wasted = obj_allocated - obj_used; 2038 obj_wasted /= class->objs_per_zspage; 2039 2040 return obj_wasted * class->pages_per_zspage; 2041 } 2042 2043 static unsigned long __zs_compact(struct zs_pool *pool, 2044 struct size_class *class) 2045 { 2046 struct zspage *src_zspage = NULL; 2047 struct zspage *dst_zspage = NULL; 2048 unsigned long pages_freed = 0; 2049 2050 /* 2051 * Protect against races between zpage migration and zs_free() 2052 * (only when ZS_OBJ_CLASS_BITS does not apply), as well as 2053 * zpage allocation and free. 2054 */ 2055 write_lock(&pool->lock); 2056 spin_lock(&class->lock); 2057 while (zs_can_compact(class)) { 2058 int fg; 2059 2060 if (!dst_zspage) { 2061 dst_zspage = isolate_dst_zspage(class); 2062 if (!dst_zspage) 2063 break; 2064 } 2065 2066 src_zspage = isolate_src_zspage(class); 2067 if (!src_zspage) 2068 break; 2069 2070 if (!zspage_write_trylock(src_zspage)) 2071 break; 2072 2073 migrate_zspage(pool, src_zspage, dst_zspage); 2074 zspage_write_unlock(src_zspage); 2075 2076 fg = putback_zspage(class, src_zspage); 2077 if (fg == ZS_INUSE_RATIO_0) { 2078 free_zspage(pool, class, src_zspage); 2079 pages_freed += class->pages_per_zspage; 2080 } 2081 src_zspage = NULL; 2082 2083 if (get_fullness_group(class, dst_zspage) == ZS_INUSE_RATIO_100 2084 || rwlock_is_contended(&pool->lock)) { 2085 putback_zspage(class, dst_zspage); 2086 dst_zspage = NULL; 2087 2088 spin_unlock(&class->lock); 2089 write_unlock(&pool->lock); 2090 cond_resched(); 2091 write_lock(&pool->lock); 2092 spin_lock(&class->lock); 2093 } 2094 } 2095 2096 if (src_zspage) 2097 putback_zspage(class, src_zspage); 2098 2099 if (dst_zspage) 2100 putback_zspage(class, dst_zspage); 2101 2102 spin_unlock(&class->lock); 2103 write_unlock(&pool->lock); 2104 2105 return pages_freed; 2106 } 2107 2108 unsigned long zs_compact(struct zs_pool *pool) 2109 { 2110 int i; 2111 struct size_class *class; 2112 unsigned long pages_freed = 0; 2113 2114 /* 2115 * Pool compaction is performed under pool->lock so it is basically 2116 * single-threaded. Having more than one thread in __zs_compact() 2117 * will increase pool->lock contention, which will impact other 2118 * zsmalloc operations that need pool->lock. 2119 */ 2120 if (atomic_xchg(&pool->compaction_in_progress, 1)) 2121 return 0; 2122 2123 for (i = ZS_SIZE_CLASSES - 1; i >= 0; i--) { 2124 class = pool->size_class[i]; 2125 if (class->index != i) 2126 continue; 2127 pages_freed += __zs_compact(pool, class); 2128 } 2129 atomic_long_add(pages_freed, &pool->stats.pages_compacted); 2130 atomic_set(&pool->compaction_in_progress, 0); 2131 2132 return pages_freed; 2133 } 2134 EXPORT_SYMBOL_GPL(zs_compact); 2135 2136 void zs_pool_stats(struct zs_pool *pool, struct zs_pool_stats *stats) 2137 { 2138 memcpy(stats, &pool->stats, sizeof(struct zs_pool_stats)); 2139 } 2140 EXPORT_SYMBOL_GPL(zs_pool_stats); 2141 2142 static unsigned long zs_shrinker_scan(struct shrinker *shrinker, 2143 struct shrink_control *sc) 2144 { 2145 unsigned long pages_freed; 2146 struct zs_pool *pool = shrinker->private_data; 2147 2148 /* 2149 * Compact classes and calculate compaction delta. 2150 * Can run concurrently with a manually triggered 2151 * (by user) compaction. 2152 */ 2153 pages_freed = zs_compact(pool); 2154 2155 return pages_freed ? pages_freed : SHRINK_STOP; 2156 } 2157 2158 static unsigned long zs_shrinker_count(struct shrinker *shrinker, 2159 struct shrink_control *sc) 2160 { 2161 int i; 2162 struct size_class *class; 2163 unsigned long pages_to_free = 0; 2164 struct zs_pool *pool = shrinker->private_data; 2165 2166 for (i = ZS_SIZE_CLASSES - 1; i >= 0; i--) { 2167 class = pool->size_class[i]; 2168 if (class->index != i) 2169 continue; 2170 2171 pages_to_free += zs_can_compact(class); 2172 } 2173 2174 return pages_to_free; 2175 } 2176 2177 static void zs_unregister_shrinker(struct zs_pool *pool) 2178 { 2179 shrinker_free(pool->shrinker); 2180 } 2181 2182 static int zs_register_shrinker(struct zs_pool *pool) 2183 { 2184 pool->shrinker = shrinker_alloc(0, "mm-zspool:%s", pool->name); 2185 if (!pool->shrinker) 2186 return -ENOMEM; 2187 2188 pool->shrinker->scan_objects = zs_shrinker_scan; 2189 pool->shrinker->count_objects = zs_shrinker_count; 2190 pool->shrinker->batch = 0; 2191 pool->shrinker->private_data = pool; 2192 2193 shrinker_register(pool->shrinker); 2194 2195 return 0; 2196 } 2197 2198 static int calculate_zspage_chain_size(int class_size) 2199 { 2200 int i, min_waste = INT_MAX; 2201 int chain_size = 1; 2202 2203 if (is_power_of_2(class_size)) 2204 return chain_size; 2205 2206 for (i = 1; i <= ZS_MAX_PAGES_PER_ZSPAGE; i++) { 2207 int waste; 2208 2209 waste = (i * PAGE_SIZE) % class_size; 2210 if (waste < min_waste) { 2211 min_waste = waste; 2212 chain_size = i; 2213 } 2214 } 2215 2216 return chain_size; 2217 } 2218 2219 /** 2220 * zs_create_pool - Creates an allocation pool to work from. 2221 * @name: pool name to be created 2222 * 2223 * This function must be called before anything when using 2224 * the zsmalloc allocator. 2225 * 2226 * On success, a pointer to the newly created pool is returned, 2227 * otherwise NULL. 2228 */ 2229 struct zs_pool *zs_create_pool(const char *name) 2230 { 2231 int i; 2232 struct zs_pool *pool; 2233 struct size_class *prev_class = NULL; 2234 2235 pool = kzalloc_obj(*pool); 2236 if (!pool) 2237 return NULL; 2238 2239 init_deferred_free(pool); 2240 rwlock_init(&pool->lock); 2241 atomic_set(&pool->compaction_in_progress, 0); 2242 2243 pool->name = kstrdup(name, GFP_KERNEL); 2244 if (!pool->name) 2245 goto err; 2246 2247 /* 2248 * Iterate reversely, because, size of size_class that we want to use 2249 * for merging should be larger or equal to current size. 2250 */ 2251 for (i = ZS_SIZE_CLASSES - 1; i >= 0; i--) { 2252 int size; 2253 int pages_per_zspage; 2254 int objs_per_zspage; 2255 struct size_class *class; 2256 int fullness; 2257 2258 size = ZS_MIN_ALLOC_SIZE + i * ZS_SIZE_CLASS_DELTA; 2259 if (size > ZS_MAX_ALLOC_SIZE) 2260 size = ZS_MAX_ALLOC_SIZE; 2261 pages_per_zspage = calculate_zspage_chain_size(size); 2262 objs_per_zspage = pages_per_zspage * PAGE_SIZE / size; 2263 2264 /* 2265 * We iterate from biggest down to smallest classes, 2266 * so huge_class_size holds the size of the first huge 2267 * class. Any object bigger than or equal to that will 2268 * endup in the huge class. 2269 */ 2270 if (pages_per_zspage != 1 && objs_per_zspage != 1 && 2271 !huge_class_size) { 2272 huge_class_size = size; 2273 /* 2274 * The object uses ZS_HANDLE_SIZE bytes to store the 2275 * handle. We need to subtract it, because zs_malloc() 2276 * unconditionally adds handle size before it performs 2277 * size class search - so object may be smaller than 2278 * huge class size, yet it still can end up in the huge 2279 * class because it grows by ZS_HANDLE_SIZE extra bytes 2280 * right before class lookup. 2281 */ 2282 huge_class_size -= (ZS_HANDLE_SIZE - 1); 2283 } 2284 2285 /* 2286 * size_class is used for normal zsmalloc operation such 2287 * as alloc/free for that size. Although it is natural that we 2288 * have one size_class for each size, there is a chance that we 2289 * can get more memory utilization if we use one size_class for 2290 * many different sizes whose size_class have same 2291 * characteristics. So, we makes size_class point to 2292 * previous size_class if possible. 2293 */ 2294 if (prev_class) { 2295 if (can_merge(prev_class, pages_per_zspage, objs_per_zspage)) { 2296 pool->size_class[i] = prev_class; 2297 continue; 2298 } 2299 } 2300 2301 class = kzalloc_obj(struct size_class); 2302 if (!class) 2303 goto err; 2304 2305 class->size = size; 2306 class->index = i; 2307 class->pages_per_zspage = pages_per_zspage; 2308 class->objs_per_zspage = objs_per_zspage; 2309 spin_lock_init(&class->lock); 2310 pool->size_class[i] = class; 2311 2312 fullness = ZS_INUSE_RATIO_0; 2313 while (fullness < NR_FULLNESS_GROUPS) { 2314 INIT_LIST_HEAD(&class->fullness_list[fullness]); 2315 fullness++; 2316 } 2317 2318 prev_class = class; 2319 } 2320 2321 /* debug only, don't abort if it fails */ 2322 zs_pool_stat_create(pool, name); 2323 2324 /* 2325 * Not critical since shrinker is only used to trigger internal 2326 * defragmentation of the pool which is pretty optional thing. If 2327 * registration fails we still can use the pool normally and user can 2328 * trigger compaction manually. Thus, ignore return code. 2329 */ 2330 zs_register_shrinker(pool); 2331 2332 return pool; 2333 2334 err: 2335 zs_destroy_pool(pool); 2336 return NULL; 2337 } 2338 EXPORT_SYMBOL_GPL(zs_create_pool); 2339 2340 void zs_destroy_pool(struct zs_pool *pool) 2341 { 2342 int i; 2343 2344 zs_unregister_shrinker(pool); 2345 zs_flush_migration(pool); 2346 zs_pool_stat_destroy(pool); 2347 2348 for (i = 0; i < ZS_SIZE_CLASSES; i++) { 2349 int fg; 2350 struct size_class *class = pool->size_class[i]; 2351 2352 if (!class) 2353 continue; 2354 2355 if (class->index != i) 2356 continue; 2357 2358 for (fg = ZS_INUSE_RATIO_0; fg < NR_FULLNESS_GROUPS; fg++) { 2359 if (list_empty(&class->fullness_list[fg])) 2360 continue; 2361 2362 pr_err("Class-%d fullness group %d is not empty\n", 2363 class->size, fg); 2364 } 2365 kfree(class); 2366 } 2367 2368 kfree(pool->name); 2369 kfree(pool); 2370 } 2371 EXPORT_SYMBOL_GPL(zs_destroy_pool); 2372 2373 static void zs_destroy_caches(void) 2374 { 2375 kmem_cache_destroy(handle_cachep); 2376 handle_cachep = NULL; 2377 kmem_cache_destroy(zspage_cachep); 2378 zspage_cachep = NULL; 2379 } 2380 2381 static int __init zs_init_caches(void) 2382 { 2383 handle_cachep = kmem_cache_create("zs_handle", ZS_HANDLE_SIZE, 2384 0, 0, NULL); 2385 zspage_cachep = kmem_cache_create("zspage", sizeof(struct zspage), 2386 0, 0, NULL); 2387 2388 if (!handle_cachep || !zspage_cachep) { 2389 zs_destroy_caches(); 2390 return -ENOMEM; 2391 } 2392 return 0; 2393 } 2394 2395 static int __init zs_init(void) 2396 { 2397 int rc; 2398 2399 rc = zs_init_caches(); 2400 if (rc) 2401 return rc; 2402 2403 #ifdef CONFIG_COMPACTION 2404 rc = set_movable_ops(&zsmalloc_mops, PGTY_zsmalloc); 2405 if (rc) { 2406 zs_destroy_caches(); 2407 return rc; 2408 } 2409 #endif 2410 zs_stat_init(); 2411 return 0; 2412 } 2413 2414 static void __exit zs_exit(void) 2415 { 2416 #ifdef CONFIG_COMPACTION 2417 set_movable_ops(NULL, PGTY_zsmalloc); 2418 #endif 2419 zs_stat_exit(); 2420 zs_destroy_caches(); 2421 } 2422 2423 module_init(zs_init); 2424 module_exit(zs_exit); 2425 2426 MODULE_LICENSE("Dual BSD/GPL"); 2427 MODULE_AUTHOR("Nitin Gupta <ngupta@vflare.org>"); 2428 MODULE_DESCRIPTION("zsmalloc memory allocator"); 2429