Merge tag 'hyperv-fixes-signed' of git://git.kernel.org/pub/scm/linux/kernel/git...
[linux-2.6-block.git] / mm / z3fold.c
CommitLineData
09c434b8 1// SPDX-License-Identifier: GPL-2.0-only
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2/*
3 * z3fold.c
4 *
5 * Author: Vitaly Wool <vitaly.wool@konsulko.com>
6 * Copyright (C) 2016, Sony Mobile Communications Inc.
7 *
8 * This implementation is based on zbud written by Seth Jennings.
9 *
10 * z3fold is an special purpose allocator for storing compressed pages. It
11 * can store up to three compressed pages per page which improves the
12 * compression ratio of zbud while retaining its main concepts (e. g. always
13 * storing an integral number of objects per page) and simplicity.
14 * It still has simple and deterministic reclaim properties that make it
15 * preferable to a higher density approach (with no requirement on integral
16 * number of object per page) when reclaim is used.
17 *
18 * As in zbud, pages are divided into "chunks". The size of the chunks is
19 * fixed at compile time and is determined by NCHUNKS_ORDER below.
20 *
21 * z3fold doesn't export any API and is meant to be used via zpool API.
22 */
23
24#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
25
26#include <linux/atomic.h>
d30561c5 27#include <linux/sched.h>
1f862989 28#include <linux/cpumask.h>
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29#include <linux/list.h>
30#include <linux/mm.h>
31#include <linux/module.h>
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32#include <linux/page-flags.h>
33#include <linux/migrate.h>
34#include <linux/node.h>
35#include <linux/compaction.h>
d30561c5 36#include <linux/percpu.h>
1f862989 37#include <linux/mount.h>
ea8157ab 38#include <linux/pseudo_fs.h>
1f862989 39#include <linux/fs.h>
9a001fc1 40#include <linux/preempt.h>
d30561c5 41#include <linux/workqueue.h>
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42#include <linux/slab.h>
43#include <linux/spinlock.h>
44#include <linux/zpool.h>
ea8157ab 45#include <linux/magic.h>
9a001fc1 46
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47/*
48 * NCHUNKS_ORDER determines the internal allocation granularity, effectively
49 * adjusting internal fragmentation. It also determines the number of
50 * freelists maintained in each pool. NCHUNKS_ORDER of 6 means that the
51 * allocation granularity will be in chunks of size PAGE_SIZE/64. Some chunks
52 * in the beginning of an allocated page are occupied by z3fold header, so
53 * NCHUNKS will be calculated to 63 (or 62 in case CONFIG_DEBUG_SPINLOCK=y),
54 * which shows the max number of free chunks in z3fold page, also there will
55 * be 63, or 62, respectively, freelists per pool.
56 */
57#define NCHUNKS_ORDER 6
58
59#define CHUNK_SHIFT (PAGE_SHIFT - NCHUNKS_ORDER)
60#define CHUNK_SIZE (1 << CHUNK_SHIFT)
61#define ZHDR_SIZE_ALIGNED round_up(sizeof(struct z3fold_header), CHUNK_SIZE)
62#define ZHDR_CHUNKS (ZHDR_SIZE_ALIGNED >> CHUNK_SHIFT)
63#define TOTAL_CHUNKS (PAGE_SIZE >> CHUNK_SHIFT)
64#define NCHUNKS ((PAGE_SIZE - ZHDR_SIZE_ALIGNED) >> CHUNK_SHIFT)
65
66#define BUDDY_MASK (0x3)
67#define BUDDY_SHIFT 2
68#define SLOTS_ALIGN (0x40)
69
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70/*****************
71 * Structures
72*****************/
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73struct z3fold_pool;
74struct z3fold_ops {
75 int (*evict)(struct z3fold_pool *pool, unsigned long handle);
76};
77
78enum buddy {
79 HEADLESS = 0,
80 FIRST,
81 MIDDLE,
82 LAST,
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83 BUDDIES_MAX = LAST
84};
85
86struct z3fold_buddy_slots {
87 /*
88 * we are using BUDDY_MASK in handle_to_buddy etc. so there should
89 * be enough slots to hold all possible variants
90 */
91 unsigned long slot[BUDDY_MASK + 1];
92 unsigned long pool; /* back link + flags */
ede93213 93};
7c2b8baa 94#define HANDLE_FLAG_MASK (0x03)
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95
96/*
d30561c5 97 * struct z3fold_header - z3fold page metadata occupying first chunks of each
ede93213 98 * z3fold page, except for HEADLESS pages
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99 * @buddy: links the z3fold page into the relevant list in the
100 * pool
2f1e5e4d 101 * @page_lock: per-page lock
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102 * @refcount: reference count for the z3fold page
103 * @work: work_struct for page layout optimization
7c2b8baa 104 * @slots: pointer to the structure holding buddy slots
bb9a374d 105 * @pool: pointer to the containing pool
d30561c5 106 * @cpu: CPU which this page "belongs" to
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107 * @first_chunks: the size of the first buddy in chunks, 0 if free
108 * @middle_chunks: the size of the middle buddy in chunks, 0 if free
109 * @last_chunks: the size of the last buddy in chunks, 0 if free
110 * @first_num: the starting number (for the first handle)
1f862989 111 * @mapped_count: the number of objects currently mapped
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112 */
113struct z3fold_header {
114 struct list_head buddy;
2f1e5e4d 115 spinlock_t page_lock;
5a27aa82 116 struct kref refcount;
d30561c5 117 struct work_struct work;
7c2b8baa 118 struct z3fold_buddy_slots *slots;
bb9a374d 119 struct z3fold_pool *pool;
d30561c5 120 short cpu;
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121 unsigned short first_chunks;
122 unsigned short middle_chunks;
123 unsigned short last_chunks;
124 unsigned short start_middle;
125 unsigned short first_num:2;
1f862989 126 unsigned short mapped_count:2;
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127};
128
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129/**
130 * struct z3fold_pool - stores metadata for each z3fold pool
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131 * @name: pool name
132 * @lock: protects pool unbuddied/lru lists
133 * @stale_lock: protects pool stale page list
134 * @unbuddied: per-cpu array of lists tracking z3fold pages that contain 2-
135 * buddies; the list each z3fold page is added to depends on
136 * the size of its free region.
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137 * @lru: list tracking the z3fold pages in LRU order by most recently
138 * added buddy.
d30561c5 139 * @stale: list of pages marked for freeing
9a001fc1 140 * @pages_nr: number of z3fold pages in the pool.
7c2b8baa 141 * @c_handle: cache for z3fold_buddy_slots allocation
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142 * @ops: pointer to a structure of user defined operations specified at
143 * pool creation time.
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144 * @compact_wq: workqueue for page layout background optimization
145 * @release_wq: workqueue for safe page release
146 * @work: work_struct for safe page release
1f862989 147 * @inode: inode for z3fold pseudo filesystem
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148 *
149 * This structure is allocated at pool creation time and maintains metadata
150 * pertaining to a particular z3fold pool.
151 */
152struct z3fold_pool {
d30561c5 153 const char *name;
9a001fc1 154 spinlock_t lock;
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155 spinlock_t stale_lock;
156 struct list_head *unbuddied;
9a001fc1 157 struct list_head lru;
d30561c5 158 struct list_head stale;
12d59ae6 159 atomic64_t pages_nr;
7c2b8baa 160 struct kmem_cache *c_handle;
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161 const struct z3fold_ops *ops;
162 struct zpool *zpool;
163 const struct zpool_ops *zpool_ops;
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164 struct workqueue_struct *compact_wq;
165 struct workqueue_struct *release_wq;
166 struct work_struct work;
1f862989 167 struct inode *inode;
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168};
169
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170/*
171 * Internal z3fold page flags
172 */
173enum z3fold_page_flags {
5a27aa82 174 PAGE_HEADLESS = 0,
9a001fc1 175 MIDDLE_CHUNK_MAPPED,
d30561c5 176 NEEDS_COMPACTING,
6098d7e1 177 PAGE_STALE,
ca0246bb 178 PAGE_CLAIMED, /* by either reclaim or free */
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179};
180
181/*****************
182 * Helpers
183*****************/
184
185/* Converts an allocation size in bytes to size in z3fold chunks */
186static int size_to_chunks(size_t size)
187{
188 return (size + CHUNK_SIZE - 1) >> CHUNK_SHIFT;
189}
190
191#define for_each_unbuddied_list(_iter, _begin) \
192 for ((_iter) = (_begin); (_iter) < NCHUNKS; (_iter)++)
193
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194static void compact_page_work(struct work_struct *w);
195
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196static inline struct z3fold_buddy_slots *alloc_slots(struct z3fold_pool *pool,
197 gfp_t gfp)
7c2b8baa 198{
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199 struct z3fold_buddy_slots *slots;
200
201 slots = kmem_cache_alloc(pool->c_handle,
202 (gfp & ~(__GFP_HIGHMEM | __GFP_MOVABLE)));
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203
204 if (slots) {
205 memset(slots->slot, 0, sizeof(slots->slot));
206 slots->pool = (unsigned long)pool;
207 }
208
209 return slots;
210}
211
212static inline struct z3fold_pool *slots_to_pool(struct z3fold_buddy_slots *s)
213{
214 return (struct z3fold_pool *)(s->pool & ~HANDLE_FLAG_MASK);
215}
216
217static inline struct z3fold_buddy_slots *handle_to_slots(unsigned long handle)
218{
219 return (struct z3fold_buddy_slots *)(handle & ~(SLOTS_ALIGN - 1));
220}
221
222static inline void free_handle(unsigned long handle)
223{
224 struct z3fold_buddy_slots *slots;
225 int i;
226 bool is_free;
227
228 if (handle & (1 << PAGE_HEADLESS))
229 return;
230
231 WARN_ON(*(unsigned long *)handle == 0);
232 *(unsigned long *)handle = 0;
233 slots = handle_to_slots(handle);
234 is_free = true;
235 for (i = 0; i <= BUDDY_MASK; i++) {
236 if (slots->slot[i]) {
237 is_free = false;
238 break;
239 }
240 }
241
242 if (is_free) {
243 struct z3fold_pool *pool = slots_to_pool(slots);
244
245 kmem_cache_free(pool->c_handle, slots);
246 }
247}
248
ea8157ab 249static int z3fold_init_fs_context(struct fs_context *fc)
1f862989 250{
ea8157ab 251 return init_pseudo(fc, Z3FOLD_MAGIC) ? 0 : -ENOMEM;
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252}
253
254static struct file_system_type z3fold_fs = {
255 .name = "z3fold",
ea8157ab 256 .init_fs_context = z3fold_init_fs_context,
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257 .kill_sb = kill_anon_super,
258};
259
260static struct vfsmount *z3fold_mnt;
261static int z3fold_mount(void)
262{
263 int ret = 0;
264
265 z3fold_mnt = kern_mount(&z3fold_fs);
266 if (IS_ERR(z3fold_mnt))
267 ret = PTR_ERR(z3fold_mnt);
268
269 return ret;
270}
271
272static void z3fold_unmount(void)
273{
274 kern_unmount(z3fold_mnt);
275}
276
277static const struct address_space_operations z3fold_aops;
278static int z3fold_register_migration(struct z3fold_pool *pool)
279{
280 pool->inode = alloc_anon_inode(z3fold_mnt->mnt_sb);
281 if (IS_ERR(pool->inode)) {
282 pool->inode = NULL;
283 return 1;
284 }
285
286 pool->inode->i_mapping->private_data = pool;
287 pool->inode->i_mapping->a_ops = &z3fold_aops;
288 return 0;
289}
290
291static void z3fold_unregister_migration(struct z3fold_pool *pool)
292{
293 if (pool->inode)
294 iput(pool->inode);
295 }
296
9a001fc1 297/* Initializes the z3fold header of a newly allocated z3fold page */
d30561c5 298static struct z3fold_header *init_z3fold_page(struct page *page,
bb9f6f63 299 struct z3fold_pool *pool, gfp_t gfp)
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300{
301 struct z3fold_header *zhdr = page_address(page);
bb9f6f63 302 struct z3fold_buddy_slots *slots = alloc_slots(pool, gfp);
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303
304 if (!slots)
305 return NULL;
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306
307 INIT_LIST_HEAD(&page->lru);
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308 clear_bit(PAGE_HEADLESS, &page->private);
309 clear_bit(MIDDLE_CHUNK_MAPPED, &page->private);
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310 clear_bit(NEEDS_COMPACTING, &page->private);
311 clear_bit(PAGE_STALE, &page->private);
ca0246bb 312 clear_bit(PAGE_CLAIMED, &page->private);
9a001fc1 313
2f1e5e4d 314 spin_lock_init(&zhdr->page_lock);
5a27aa82 315 kref_init(&zhdr->refcount);
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316 zhdr->first_chunks = 0;
317 zhdr->middle_chunks = 0;
318 zhdr->last_chunks = 0;
319 zhdr->first_num = 0;
320 zhdr->start_middle = 0;
d30561c5 321 zhdr->cpu = -1;
7c2b8baa 322 zhdr->slots = slots;
bb9a374d 323 zhdr->pool = pool;
9a001fc1 324 INIT_LIST_HEAD(&zhdr->buddy);
d30561c5 325 INIT_WORK(&zhdr->work, compact_page_work);
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326 return zhdr;
327}
328
329/* Resets the struct page fields and frees the page */
1f862989 330static void free_z3fold_page(struct page *page, bool headless)
9a001fc1 331{
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332 if (!headless) {
333 lock_page(page);
334 __ClearPageMovable(page);
335 unlock_page(page);
336 }
337 ClearPagePrivate(page);
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338 __free_page(page);
339}
340
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341/* Lock a z3fold page */
342static inline void z3fold_page_lock(struct z3fold_header *zhdr)
343{
344 spin_lock(&zhdr->page_lock);
345}
346
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347/* Try to lock a z3fold page */
348static inline int z3fold_page_trylock(struct z3fold_header *zhdr)
349{
350 return spin_trylock(&zhdr->page_lock);
351}
352
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353/* Unlock a z3fold page */
354static inline void z3fold_page_unlock(struct z3fold_header *zhdr)
355{
356 spin_unlock(&zhdr->page_lock);
357}
358
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359/* Helper function to build the index */
360static inline int __idx(struct z3fold_header *zhdr, enum buddy bud)
361{
362 return (bud + zhdr->first_num) & BUDDY_MASK;
363}
364
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365/*
366 * Encodes the handle of a particular buddy within a z3fold page
367 * Pool lock should be held as this function accesses first_num
368 */
369static unsigned long encode_handle(struct z3fold_header *zhdr, enum buddy bud)
370{
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371 struct z3fold_buddy_slots *slots;
372 unsigned long h = (unsigned long)zhdr;
373 int idx = 0;
9a001fc1 374
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375 /*
376 * For a headless page, its handle is its pointer with the extra
377 * PAGE_HEADLESS bit set
378 */
379 if (bud == HEADLESS)
380 return h | (1 << PAGE_HEADLESS);
381
382 /* otherwise, return pointer to encoded handle */
383 idx = __idx(zhdr, bud);
384 h += idx;
385 if (bud == LAST)
386 h |= (zhdr->last_chunks << BUDDY_SHIFT);
387
388 slots = zhdr->slots;
389 slots->slot[idx] = h;
390 return (unsigned long)&slots->slot[idx];
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391}
392
393/* Returns the z3fold page where a given handle is stored */
1f862989 394static inline struct z3fold_header *handle_to_z3fold_header(unsigned long h)
9a001fc1 395{
1f862989 396 unsigned long addr = h;
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397
398 if (!(addr & (1 << PAGE_HEADLESS)))
1f862989 399 addr = *(unsigned long *)h;
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400
401 return (struct z3fold_header *)(addr & PAGE_MASK);
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402}
403
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404/* only for LAST bud, returns zero otherwise */
405static unsigned short handle_to_chunks(unsigned long handle)
406{
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407 unsigned long addr = *(unsigned long *)handle;
408
409 return (addr & ~PAGE_MASK) >> BUDDY_SHIFT;
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410}
411
f201ebd8 412/*
413 * (handle & BUDDY_MASK) < zhdr->first_num is possible in encode_handle
414 * but that doesn't matter. because the masking will result in the
415 * correct buddy number.
416 */
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417static enum buddy handle_to_buddy(unsigned long handle)
418{
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419 struct z3fold_header *zhdr;
420 unsigned long addr;
421
422 WARN_ON(handle & (1 << PAGE_HEADLESS));
423 addr = *(unsigned long *)handle;
424 zhdr = (struct z3fold_header *)(addr & PAGE_MASK);
425 return (addr - zhdr->first_num) & BUDDY_MASK;
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426}
427
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428static inline struct z3fold_pool *zhdr_to_pool(struct z3fold_header *zhdr)
429{
bb9a374d 430 return zhdr->pool;
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431}
432
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433static void __release_z3fold_page(struct z3fold_header *zhdr, bool locked)
434{
435 struct page *page = virt_to_page(zhdr);
9050cce1 436 struct z3fold_pool *pool = zhdr_to_pool(zhdr);
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437
438 WARN_ON(!list_empty(&zhdr->buddy));
439 set_bit(PAGE_STALE, &page->private);
35529357 440 clear_bit(NEEDS_COMPACTING, &page->private);
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441 spin_lock(&pool->lock);
442 if (!list_empty(&page->lru))
1f862989 443 list_del_init(&page->lru);
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444 spin_unlock(&pool->lock);
445 if (locked)
446 z3fold_page_unlock(zhdr);
447 spin_lock(&pool->stale_lock);
448 list_add(&zhdr->buddy, &pool->stale);
449 queue_work(pool->release_wq, &pool->work);
450 spin_unlock(&pool->stale_lock);
451}
452
453static void __attribute__((__unused__))
454 release_z3fold_page(struct kref *ref)
455{
456 struct z3fold_header *zhdr = container_of(ref, struct z3fold_header,
457 refcount);
458 __release_z3fold_page(zhdr, false);
459}
460
461static void release_z3fold_page_locked(struct kref *ref)
462{
463 struct z3fold_header *zhdr = container_of(ref, struct z3fold_header,
464 refcount);
465 WARN_ON(z3fold_page_trylock(zhdr));
466 __release_z3fold_page(zhdr, true);
467}
468
469static void release_z3fold_page_locked_list(struct kref *ref)
470{
471 struct z3fold_header *zhdr = container_of(ref, struct z3fold_header,
472 refcount);
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473 struct z3fold_pool *pool = zhdr_to_pool(zhdr);
474 spin_lock(&pool->lock);
d30561c5 475 list_del_init(&zhdr->buddy);
9050cce1 476 spin_unlock(&pool->lock);
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477
478 WARN_ON(z3fold_page_trylock(zhdr));
479 __release_z3fold_page(zhdr, true);
480}
481
482static void free_pages_work(struct work_struct *w)
483{
484 struct z3fold_pool *pool = container_of(w, struct z3fold_pool, work);
485
486 spin_lock(&pool->stale_lock);
487 while (!list_empty(&pool->stale)) {
488 struct z3fold_header *zhdr = list_first_entry(&pool->stale,
489 struct z3fold_header, buddy);
490 struct page *page = virt_to_page(zhdr);
491
492 list_del(&zhdr->buddy);
493 if (WARN_ON(!test_bit(PAGE_STALE, &page->private)))
494 continue;
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495 spin_unlock(&pool->stale_lock);
496 cancel_work_sync(&zhdr->work);
1f862989 497 free_z3fold_page(page, false);
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498 cond_resched();
499 spin_lock(&pool->stale_lock);
500 }
501 spin_unlock(&pool->stale_lock);
502}
503
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504/*
505 * Returns the number of free chunks in a z3fold page.
506 * NB: can't be used with HEADLESS pages.
507 */
508static int num_free_chunks(struct z3fold_header *zhdr)
509{
510 int nfree;
511 /*
512 * If there is a middle object, pick up the bigger free space
513 * either before or after it. Otherwise just subtract the number
514 * of chunks occupied by the first and the last objects.
515 */
516 if (zhdr->middle_chunks != 0) {
517 int nfree_before = zhdr->first_chunks ?
ede93213 518 0 : zhdr->start_middle - ZHDR_CHUNKS;
9a001fc1 519 int nfree_after = zhdr->last_chunks ?
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520 0 : TOTAL_CHUNKS -
521 (zhdr->start_middle + zhdr->middle_chunks);
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522 nfree = max(nfree_before, nfree_after);
523 } else
524 nfree = NCHUNKS - zhdr->first_chunks - zhdr->last_chunks;
525 return nfree;
526}
527
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528/* Add to the appropriate unbuddied list */
529static inline void add_to_unbuddied(struct z3fold_pool *pool,
530 struct z3fold_header *zhdr)
531{
532 if (zhdr->first_chunks == 0 || zhdr->last_chunks == 0 ||
533 zhdr->middle_chunks == 0) {
534 struct list_head *unbuddied = get_cpu_ptr(pool->unbuddied);
535
536 int freechunks = num_free_chunks(zhdr);
537 spin_lock(&pool->lock);
538 list_add(&zhdr->buddy, &unbuddied[freechunks]);
539 spin_unlock(&pool->lock);
540 zhdr->cpu = smp_processor_id();
541 put_cpu_ptr(pool->unbuddied);
542 }
543}
544
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545static inline void *mchunk_memmove(struct z3fold_header *zhdr,
546 unsigned short dst_chunk)
547{
548 void *beg = zhdr;
549 return memmove(beg + (dst_chunk << CHUNK_SHIFT),
550 beg + (zhdr->start_middle << CHUNK_SHIFT),
551 zhdr->middle_chunks << CHUNK_SHIFT);
552}
553
1b096e5a 554#define BIG_CHUNK_GAP 3
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555/* Has to be called with lock held */
556static int z3fold_compact_page(struct z3fold_header *zhdr)
557{
558 struct page *page = virt_to_page(zhdr);
9a001fc1 559
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560 if (test_bit(MIDDLE_CHUNK_MAPPED, &page->private))
561 return 0; /* can't move middle chunk, it's used */
9a001fc1 562
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563 if (unlikely(PageIsolated(page)))
564 return 0;
565
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566 if (zhdr->middle_chunks == 0)
567 return 0; /* nothing to compact */
568
569 if (zhdr->first_chunks == 0 && zhdr->last_chunks == 0) {
570 /* move to the beginning */
571 mchunk_memmove(zhdr, ZHDR_CHUNKS);
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572 zhdr->first_chunks = zhdr->middle_chunks;
573 zhdr->middle_chunks = 0;
574 zhdr->start_middle = 0;
575 zhdr->first_num++;
1b096e5a 576 return 1;
9a001fc1 577 }
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578
579 /*
580 * moving data is expensive, so let's only do that if
581 * there's substantial gain (at least BIG_CHUNK_GAP chunks)
582 */
583 if (zhdr->first_chunks != 0 && zhdr->last_chunks == 0 &&
584 zhdr->start_middle - (zhdr->first_chunks + ZHDR_CHUNKS) >=
585 BIG_CHUNK_GAP) {
586 mchunk_memmove(zhdr, zhdr->first_chunks + ZHDR_CHUNKS);
587 zhdr->start_middle = zhdr->first_chunks + ZHDR_CHUNKS;
588 return 1;
589 } else if (zhdr->last_chunks != 0 && zhdr->first_chunks == 0 &&
590 TOTAL_CHUNKS - (zhdr->last_chunks + zhdr->start_middle
591 + zhdr->middle_chunks) >=
592 BIG_CHUNK_GAP) {
593 unsigned short new_start = TOTAL_CHUNKS - zhdr->last_chunks -
594 zhdr->middle_chunks;
595 mchunk_memmove(zhdr, new_start);
596 zhdr->start_middle = new_start;
597 return 1;
598 }
599
600 return 0;
9a001fc1
VW
601}
602
d30561c5
VW
603static void do_compact_page(struct z3fold_header *zhdr, bool locked)
604{
9050cce1 605 struct z3fold_pool *pool = zhdr_to_pool(zhdr);
d30561c5 606 struct page *page;
d30561c5
VW
607
608 page = virt_to_page(zhdr);
609 if (locked)
610 WARN_ON(z3fold_page_trylock(zhdr));
611 else
612 z3fold_page_lock(zhdr);
5d03a661 613 if (WARN_ON(!test_and_clear_bit(NEEDS_COMPACTING, &page->private))) {
d30561c5
VW
614 z3fold_page_unlock(zhdr);
615 return;
616 }
617 spin_lock(&pool->lock);
618 list_del_init(&zhdr->buddy);
619 spin_unlock(&pool->lock);
620
5d03a661
VW
621 if (kref_put(&zhdr->refcount, release_z3fold_page_locked)) {
622 atomic64_dec(&pool->pages_nr);
623 return;
624 }
625
1f862989
VW
626 if (unlikely(PageIsolated(page) ||
627 test_bit(PAGE_STALE, &page->private))) {
628 z3fold_page_unlock(zhdr);
629 return;
630 }
631
d30561c5 632 z3fold_compact_page(zhdr);
9050cce1 633 add_to_unbuddied(pool, zhdr);
d30561c5
VW
634 z3fold_page_unlock(zhdr);
635}
636
637static void compact_page_work(struct work_struct *w)
638{
639 struct z3fold_header *zhdr = container_of(w, struct z3fold_header,
640 work);
641
642 do_compact_page(zhdr, false);
643}
644
9050cce1
VW
645/* returns _locked_ z3fold page header or NULL */
646static inline struct z3fold_header *__z3fold_alloc(struct z3fold_pool *pool,
647 size_t size, bool can_sleep)
648{
649 struct z3fold_header *zhdr = NULL;
650 struct page *page;
651 struct list_head *unbuddied;
652 int chunks = size_to_chunks(size), i;
653
654lookup:
655 /* First, try to find an unbuddied z3fold page. */
656 unbuddied = get_cpu_ptr(pool->unbuddied);
657 for_each_unbuddied_list(i, chunks) {
658 struct list_head *l = &unbuddied[i];
659
660 zhdr = list_first_entry_or_null(READ_ONCE(l),
661 struct z3fold_header, buddy);
662
663 if (!zhdr)
664 continue;
665
666 /* Re-check under lock. */
667 spin_lock(&pool->lock);
668 l = &unbuddied[i];
669 if (unlikely(zhdr != list_first_entry(READ_ONCE(l),
670 struct z3fold_header, buddy)) ||
671 !z3fold_page_trylock(zhdr)) {
672 spin_unlock(&pool->lock);
673 zhdr = NULL;
674 put_cpu_ptr(pool->unbuddied);
675 if (can_sleep)
676 cond_resched();
677 goto lookup;
678 }
679 list_del_init(&zhdr->buddy);
680 zhdr->cpu = -1;
681 spin_unlock(&pool->lock);
682
683 page = virt_to_page(zhdr);
684 if (test_bit(NEEDS_COMPACTING, &page->private)) {
685 z3fold_page_unlock(zhdr);
686 zhdr = NULL;
687 put_cpu_ptr(pool->unbuddied);
688 if (can_sleep)
689 cond_resched();
690 goto lookup;
691 }
692
693 /*
694 * this page could not be removed from its unbuddied
695 * list while pool lock was held, and then we've taken
696 * page lock so kref_put could not be called before
697 * we got here, so it's safe to just call kref_get()
698 */
699 kref_get(&zhdr->refcount);
700 break;
701 }
702 put_cpu_ptr(pool->unbuddied);
703
351618b2
VW
704 if (!zhdr) {
705 int cpu;
706
707 /* look for _exact_ match on other cpus' lists */
708 for_each_online_cpu(cpu) {
709 struct list_head *l;
710
711 unbuddied = per_cpu_ptr(pool->unbuddied, cpu);
712 spin_lock(&pool->lock);
713 l = &unbuddied[chunks];
714
715 zhdr = list_first_entry_or_null(READ_ONCE(l),
716 struct z3fold_header, buddy);
717
718 if (!zhdr || !z3fold_page_trylock(zhdr)) {
719 spin_unlock(&pool->lock);
720 zhdr = NULL;
721 continue;
722 }
723 list_del_init(&zhdr->buddy);
724 zhdr->cpu = -1;
725 spin_unlock(&pool->lock);
726
727 page = virt_to_page(zhdr);
728 if (test_bit(NEEDS_COMPACTING, &page->private)) {
729 z3fold_page_unlock(zhdr);
730 zhdr = NULL;
731 if (can_sleep)
732 cond_resched();
733 continue;
734 }
735 kref_get(&zhdr->refcount);
736 break;
737 }
738 }
739
9050cce1
VW
740 return zhdr;
741}
d30561c5
VW
742
743/*
744 * API Functions
745 */
746
747/**
748 * z3fold_create_pool() - create a new z3fold pool
749 * @name: pool name
750 * @gfp: gfp flags when allocating the z3fold pool structure
751 * @ops: user-defined operations for the z3fold pool
752 *
753 * Return: pointer to the new z3fold pool or NULL if the metadata allocation
754 * failed.
755 */
756static struct z3fold_pool *z3fold_create_pool(const char *name, gfp_t gfp,
757 const struct z3fold_ops *ops)
758{
759 struct z3fold_pool *pool = NULL;
760 int i, cpu;
761
762 pool = kzalloc(sizeof(struct z3fold_pool), gfp);
763 if (!pool)
764 goto out;
7c2b8baa
VW
765 pool->c_handle = kmem_cache_create("z3fold_handle",
766 sizeof(struct z3fold_buddy_slots),
767 SLOTS_ALIGN, 0, NULL);
768 if (!pool->c_handle)
769 goto out_c;
d30561c5
VW
770 spin_lock_init(&pool->lock);
771 spin_lock_init(&pool->stale_lock);
772 pool->unbuddied = __alloc_percpu(sizeof(struct list_head)*NCHUNKS, 2);
1ec6995d
XW
773 if (!pool->unbuddied)
774 goto out_pool;
d30561c5
VW
775 for_each_possible_cpu(cpu) {
776 struct list_head *unbuddied =
777 per_cpu_ptr(pool->unbuddied, cpu);
778 for_each_unbuddied_list(i, 0)
779 INIT_LIST_HEAD(&unbuddied[i]);
780 }
781 INIT_LIST_HEAD(&pool->lru);
782 INIT_LIST_HEAD(&pool->stale);
783 atomic64_set(&pool->pages_nr, 0);
784 pool->name = name;
785 pool->compact_wq = create_singlethread_workqueue(pool->name);
786 if (!pool->compact_wq)
1ec6995d 787 goto out_unbuddied;
d30561c5
VW
788 pool->release_wq = create_singlethread_workqueue(pool->name);
789 if (!pool->release_wq)
790 goto out_wq;
1f862989
VW
791 if (z3fold_register_migration(pool))
792 goto out_rwq;
d30561c5
VW
793 INIT_WORK(&pool->work, free_pages_work);
794 pool->ops = ops;
795 return pool;
796
1f862989
VW
797out_rwq:
798 destroy_workqueue(pool->release_wq);
d30561c5
VW
799out_wq:
800 destroy_workqueue(pool->compact_wq);
1ec6995d
XW
801out_unbuddied:
802 free_percpu(pool->unbuddied);
803out_pool:
7c2b8baa
VW
804 kmem_cache_destroy(pool->c_handle);
805out_c:
d30561c5 806 kfree(pool);
1ec6995d 807out:
d30561c5
VW
808 return NULL;
809}
810
811/**
812 * z3fold_destroy_pool() - destroys an existing z3fold pool
813 * @pool: the z3fold pool to be destroyed
814 *
815 * The pool should be emptied before this function is called.
816 */
817static void z3fold_destroy_pool(struct z3fold_pool *pool)
818{
7c2b8baa 819 kmem_cache_destroy(pool->c_handle);
6051d3bd
HB
820
821 /*
822 * We need to destroy pool->compact_wq before pool->release_wq,
823 * as any pending work on pool->compact_wq will call
824 * queue_work(pool->release_wq, &pool->work).
b997052b
HB
825 *
826 * There are still outstanding pages until both workqueues are drained,
827 * so we cannot unregister migration until then.
6051d3bd
HB
828 */
829
d30561c5 830 destroy_workqueue(pool->compact_wq);
6051d3bd 831 destroy_workqueue(pool->release_wq);
b997052b 832 z3fold_unregister_migration(pool);
d30561c5
VW
833 kfree(pool);
834}
835
9a001fc1
VW
836/**
837 * z3fold_alloc() - allocates a region of a given size
838 * @pool: z3fold pool from which to allocate
839 * @size: size in bytes of the desired allocation
840 * @gfp: gfp flags used if the pool needs to grow
841 * @handle: handle of the new allocation
842 *
843 * This function will attempt to find a free region in the pool large enough to
844 * satisfy the allocation request. A search of the unbuddied lists is
845 * performed first. If no suitable free region is found, then a new page is
846 * allocated and added to the pool to satisfy the request.
847 *
848 * gfp should not set __GFP_HIGHMEM as highmem pages cannot be used
849 * as z3fold pool pages.
850 *
851 * Return: 0 if success and handle is set, otherwise -EINVAL if the size or
852 * gfp arguments are invalid or -ENOMEM if the pool was unable to allocate
853 * a new page.
854 */
855static int z3fold_alloc(struct z3fold_pool *pool, size_t size, gfp_t gfp,
856 unsigned long *handle)
857{
9050cce1 858 int chunks = size_to_chunks(size);
9a001fc1 859 struct z3fold_header *zhdr = NULL;
d30561c5 860 struct page *page = NULL;
9a001fc1 861 enum buddy bud;
8a97ea54 862 bool can_sleep = gfpflags_allow_blocking(gfp);
9a001fc1 863
f1549cb5 864 if (!size)
9a001fc1
VW
865 return -EINVAL;
866
867 if (size > PAGE_SIZE)
868 return -ENOSPC;
869
870 if (size > PAGE_SIZE - ZHDR_SIZE_ALIGNED - CHUNK_SIZE)
871 bud = HEADLESS;
872 else {
9050cce1
VW
873retry:
874 zhdr = __z3fold_alloc(pool, size, can_sleep);
d30561c5 875 if (zhdr) {
2f1e5e4d
VW
876 if (zhdr->first_chunks == 0) {
877 if (zhdr->middle_chunks != 0 &&
878 chunks >= zhdr->start_middle)
9a001fc1 879 bud = LAST;
2f1e5e4d
VW
880 else
881 bud = FIRST;
882 } else if (zhdr->last_chunks == 0)
883 bud = LAST;
884 else if (zhdr->middle_chunks == 0)
885 bud = MIDDLE;
886 else {
5a27aa82 887 if (kref_put(&zhdr->refcount,
d30561c5 888 release_z3fold_page_locked))
5a27aa82 889 atomic64_dec(&pool->pages_nr);
d30561c5
VW
890 else
891 z3fold_page_unlock(zhdr);
2f1e5e4d
VW
892 pr_err("No free chunks in unbuddied\n");
893 WARN_ON(1);
9050cce1 894 goto retry;
9a001fc1 895 }
9050cce1 896 page = virt_to_page(zhdr);
2f1e5e4d 897 goto found;
9a001fc1
VW
898 }
899 bud = FIRST;
9a001fc1
VW
900 }
901
5c9bab59
VW
902 page = NULL;
903 if (can_sleep) {
904 spin_lock(&pool->stale_lock);
905 zhdr = list_first_entry_or_null(&pool->stale,
906 struct z3fold_header, buddy);
907 /*
908 * Before allocating a page, let's see if we can take one from
909 * the stale pages list. cancel_work_sync() can sleep so we
910 * limit this case to the contexts where we can sleep
911 */
912 if (zhdr) {
913 list_del(&zhdr->buddy);
914 spin_unlock(&pool->stale_lock);
d30561c5 915 cancel_work_sync(&zhdr->work);
5c9bab59
VW
916 page = virt_to_page(zhdr);
917 } else {
918 spin_unlock(&pool->stale_lock);
919 }
d30561c5 920 }
5c9bab59
VW
921 if (!page)
922 page = alloc_page(gfp);
d30561c5 923
9a001fc1
VW
924 if (!page)
925 return -ENOMEM;
2f1e5e4d 926
bb9f6f63 927 zhdr = init_z3fold_page(page, pool, gfp);
9050cce1
VW
928 if (!zhdr) {
929 __free_page(page);
930 return -ENOMEM;
931 }
932 atomic64_inc(&pool->pages_nr);
9a001fc1
VW
933
934 if (bud == HEADLESS) {
935 set_bit(PAGE_HEADLESS, &page->private);
936 goto headless;
937 }
810481a2
HB
938 if (can_sleep) {
939 lock_page(page);
940 __SetPageMovable(page, pool->inode->i_mapping);
941 unlock_page(page);
942 } else {
943 if (trylock_page(page)) {
944 __SetPageMovable(page, pool->inode->i_mapping);
945 unlock_page(page);
946 }
947 }
2f1e5e4d 948 z3fold_page_lock(zhdr);
9a001fc1
VW
949
950found:
951 if (bud == FIRST)
952 zhdr->first_chunks = chunks;
953 else if (bud == LAST)
954 zhdr->last_chunks = chunks;
955 else {
956 zhdr->middle_chunks = chunks;
ede93213 957 zhdr->start_middle = zhdr->first_chunks + ZHDR_CHUNKS;
9a001fc1 958 }
9050cce1 959 add_to_unbuddied(pool, zhdr);
9a001fc1
VW
960
961headless:
d30561c5 962 spin_lock(&pool->lock);
9a001fc1
VW
963 /* Add/move z3fold page to beginning of LRU */
964 if (!list_empty(&page->lru))
965 list_del(&page->lru);
966
967 list_add(&page->lru, &pool->lru);
968
969 *handle = encode_handle(zhdr, bud);
970 spin_unlock(&pool->lock);
2f1e5e4d
VW
971 if (bud != HEADLESS)
972 z3fold_page_unlock(zhdr);
9a001fc1
VW
973
974 return 0;
975}
976
977/**
978 * z3fold_free() - frees the allocation associated with the given handle
979 * @pool: pool in which the allocation resided
980 * @handle: handle associated with the allocation returned by z3fold_alloc()
981 *
982 * In the case that the z3fold page in which the allocation resides is under
983 * reclaim, as indicated by the PG_reclaim flag being set, this function
984 * only sets the first|last_chunks to 0. The page is actually freed
985 * once both buddies are evicted (see z3fold_reclaim_page() below).
986 */
987static void z3fold_free(struct z3fold_pool *pool, unsigned long handle)
988{
989 struct z3fold_header *zhdr;
9a001fc1
VW
990 struct page *page;
991 enum buddy bud;
992
9a001fc1
VW
993 zhdr = handle_to_z3fold_header(handle);
994 page = virt_to_page(zhdr);
995
996 if (test_bit(PAGE_HEADLESS, &page->private)) {
ca0246bb
VW
997 /* if a headless page is under reclaim, just leave.
998 * NB: we use test_and_set_bit for a reason: if the bit
999 * has not been set before, we release this page
1000 * immediately so we don't care about its value any more.
1001 */
1002 if (!test_and_set_bit(PAGE_CLAIMED, &page->private)) {
1003 spin_lock(&pool->lock);
1004 list_del(&page->lru);
1005 spin_unlock(&pool->lock);
1f862989 1006 free_z3fold_page(page, true);
ca0246bb 1007 atomic64_dec(&pool->pages_nr);
9a001fc1 1008 }
ca0246bb 1009 return;
9a001fc1
VW
1010 }
1011
ca0246bb
VW
1012 /* Non-headless case */
1013 z3fold_page_lock(zhdr);
1014 bud = handle_to_buddy(handle);
1015
1016 switch (bud) {
1017 case FIRST:
1018 zhdr->first_chunks = 0;
1019 break;
1020 case MIDDLE:
1021 zhdr->middle_chunks = 0;
1022 break;
1023 case LAST:
1024 zhdr->last_chunks = 0;
1025 break;
1026 default:
1027 pr_err("%s: unknown bud %d\n", __func__, bud);
1028 WARN_ON(1);
1029 z3fold_page_unlock(zhdr);
d30561c5
VW
1030 return;
1031 }
1032
7c2b8baa 1033 free_handle(handle);
d30561c5
VW
1034 if (kref_put(&zhdr->refcount, release_z3fold_page_locked_list)) {
1035 atomic64_dec(&pool->pages_nr);
1036 return;
1037 }
ca0246bb 1038 if (test_bit(PAGE_CLAIMED, &page->private)) {
6098d7e1
VW
1039 z3fold_page_unlock(zhdr);
1040 return;
1041 }
1f862989
VW
1042 if (unlikely(PageIsolated(page)) ||
1043 test_and_set_bit(NEEDS_COMPACTING, &page->private)) {
5a27aa82 1044 z3fold_page_unlock(zhdr);
d30561c5
VW
1045 return;
1046 }
1047 if (zhdr->cpu < 0 || !cpu_online(zhdr->cpu)) {
2f1e5e4d 1048 spin_lock(&pool->lock);
d30561c5 1049 list_del_init(&zhdr->buddy);
2f1e5e4d 1050 spin_unlock(&pool->lock);
d30561c5 1051 zhdr->cpu = -1;
5d03a661 1052 kref_get(&zhdr->refcount);
d30561c5
VW
1053 do_compact_page(zhdr, true);
1054 return;
9a001fc1 1055 }
5d03a661 1056 kref_get(&zhdr->refcount);
d30561c5
VW
1057 queue_work_on(zhdr->cpu, pool->compact_wq, &zhdr->work);
1058 z3fold_page_unlock(zhdr);
9a001fc1
VW
1059}
1060
1061/**
1062 * z3fold_reclaim_page() - evicts allocations from a pool page and frees it
1063 * @pool: pool from which a page will attempt to be evicted
f144c390 1064 * @retries: number of pages on the LRU list for which eviction will
9a001fc1
VW
1065 * be attempted before failing
1066 *
1067 * z3fold reclaim is different from normal system reclaim in that it is done
1068 * from the bottom, up. This is because only the bottom layer, z3fold, has
1069 * information on how the allocations are organized within each z3fold page.
1070 * This has the potential to create interesting locking situations between
1071 * z3fold and the user, however.
1072 *
1073 * To avoid these, this is how z3fold_reclaim_page() should be called:
f144c390 1074 *
9a001fc1
VW
1075 * The user detects a page should be reclaimed and calls z3fold_reclaim_page().
1076 * z3fold_reclaim_page() will remove a z3fold page from the pool LRU list and
1077 * call the user-defined eviction handler with the pool and handle as
1078 * arguments.
1079 *
1080 * If the handle can not be evicted, the eviction handler should return
1081 * non-zero. z3fold_reclaim_page() will add the z3fold page back to the
1082 * appropriate list and try the next z3fold page on the LRU up to
1083 * a user defined number of retries.
1084 *
1085 * If the handle is successfully evicted, the eviction handler should
1086 * return 0 _and_ should have called z3fold_free() on the handle. z3fold_free()
1087 * contains logic to delay freeing the page if the page is under reclaim,
1088 * as indicated by the setting of the PG_reclaim flag on the underlying page.
1089 *
1090 * If all buddies in the z3fold page are successfully evicted, then the
1091 * z3fold page can be freed.
1092 *
1093 * Returns: 0 if page is successfully freed, otherwise -EINVAL if there are
1094 * no pages to evict or an eviction handler is not registered, -EAGAIN if
1095 * the retry limit was hit.
1096 */
1097static int z3fold_reclaim_page(struct z3fold_pool *pool, unsigned int retries)
1098{
d30561c5
VW
1099 int i, ret = 0;
1100 struct z3fold_header *zhdr = NULL;
1101 struct page *page = NULL;
1102 struct list_head *pos;
9a001fc1
VW
1103 unsigned long first_handle = 0, middle_handle = 0, last_handle = 0;
1104
1105 spin_lock(&pool->lock);
2f1e5e4d 1106 if (!pool->ops || !pool->ops->evict || retries == 0) {
9a001fc1
VW
1107 spin_unlock(&pool->lock);
1108 return -EINVAL;
1109 }
1110 for (i = 0; i < retries; i++) {
2f1e5e4d
VW
1111 if (list_empty(&pool->lru)) {
1112 spin_unlock(&pool->lock);
1113 return -EINVAL;
1114 }
d30561c5
VW
1115 list_for_each_prev(pos, &pool->lru) {
1116 page = list_entry(pos, struct page, lru);
ca0246bb
VW
1117
1118 /* this bit could have been set by free, in which case
1119 * we pass over to the next page in the pool.
1120 */
1121 if (test_and_set_bit(PAGE_CLAIMED, &page->private))
1122 continue;
1123
1f862989
VW
1124 if (unlikely(PageIsolated(page)))
1125 continue;
d30561c5 1126 if (test_bit(PAGE_HEADLESS, &page->private))
d30561c5
VW
1127 break;
1128
1f862989 1129 zhdr = page_address(page);
ca0246bb
VW
1130 if (!z3fold_page_trylock(zhdr)) {
1131 zhdr = NULL;
d30561c5 1132 continue; /* can't evict at this point */
ca0246bb 1133 }
d30561c5
VW
1134 kref_get(&zhdr->refcount);
1135 list_del_init(&zhdr->buddy);
1136 zhdr->cpu = -1;
6098d7e1 1137 break;
d30561c5
VW
1138 }
1139
ca0246bb
VW
1140 if (!zhdr)
1141 break;
1142
5a27aa82 1143 list_del_init(&page->lru);
d30561c5 1144 spin_unlock(&pool->lock);
9a001fc1 1145
9a001fc1 1146 if (!test_bit(PAGE_HEADLESS, &page->private)) {
9a001fc1
VW
1147 /*
1148 * We need encode the handles before unlocking, since
1149 * we can race with free that will set
1150 * (first|last)_chunks to 0
1151 */
1152 first_handle = 0;
1153 last_handle = 0;
1154 middle_handle = 0;
1155 if (zhdr->first_chunks)
1156 first_handle = encode_handle(zhdr, FIRST);
1157 if (zhdr->middle_chunks)
1158 middle_handle = encode_handle(zhdr, MIDDLE);
1159 if (zhdr->last_chunks)
1160 last_handle = encode_handle(zhdr, LAST);
d30561c5
VW
1161 /*
1162 * it's safe to unlock here because we hold a
1163 * reference to this page
1164 */
2f1e5e4d 1165 z3fold_page_unlock(zhdr);
9a001fc1
VW
1166 } else {
1167 first_handle = encode_handle(zhdr, HEADLESS);
1168 last_handle = middle_handle = 0;
1169 }
1170
9a001fc1
VW
1171 /* Issue the eviction callback(s) */
1172 if (middle_handle) {
1173 ret = pool->ops->evict(pool, middle_handle);
1174 if (ret)
1175 goto next;
1176 }
1177 if (first_handle) {
1178 ret = pool->ops->evict(pool, first_handle);
1179 if (ret)
1180 goto next;
1181 }
1182 if (last_handle) {
1183 ret = pool->ops->evict(pool, last_handle);
1184 if (ret)
1185 goto next;
1186 }
1187next:
5a27aa82
VW
1188 if (test_bit(PAGE_HEADLESS, &page->private)) {
1189 if (ret == 0) {
1f862989 1190 free_z3fold_page(page, true);
ca0246bb 1191 atomic64_dec(&pool->pages_nr);
5a27aa82 1192 return 0;
5a27aa82 1193 }
6098d7e1
VW
1194 spin_lock(&pool->lock);
1195 list_add(&page->lru, &pool->lru);
1196 spin_unlock(&pool->lock);
1197 } else {
1198 z3fold_page_lock(zhdr);
ca0246bb 1199 clear_bit(PAGE_CLAIMED, &page->private);
6098d7e1
VW
1200 if (kref_put(&zhdr->refcount,
1201 release_z3fold_page_locked)) {
1202 atomic64_dec(&pool->pages_nr);
1203 return 0;
1204 }
1205 /*
1206 * if we are here, the page is still not completely
1207 * free. Take the global pool lock then to be able
1208 * to add it back to the lru list
1209 */
1210 spin_lock(&pool->lock);
1211 list_add(&page->lru, &pool->lru);
d5567c9d 1212 spin_unlock(&pool->lock);
6098d7e1 1213 z3fold_page_unlock(zhdr);
5a27aa82 1214 }
2f1e5e4d 1215
6098d7e1
VW
1216 /* We started off locked to we need to lock the pool back */
1217 spin_lock(&pool->lock);
9a001fc1
VW
1218 }
1219 spin_unlock(&pool->lock);
1220 return -EAGAIN;
1221}
1222
1223/**
1224 * z3fold_map() - maps the allocation associated with the given handle
1225 * @pool: pool in which the allocation resides
1226 * @handle: handle associated with the allocation to be mapped
1227 *
1228 * Extracts the buddy number from handle and constructs the pointer to the
1229 * correct starting chunk within the page.
1230 *
1231 * Returns: a pointer to the mapped allocation
1232 */
1233static void *z3fold_map(struct z3fold_pool *pool, unsigned long handle)
1234{
1235 struct z3fold_header *zhdr;
1236 struct page *page;
1237 void *addr;
1238 enum buddy buddy;
1239
9a001fc1
VW
1240 zhdr = handle_to_z3fold_header(handle);
1241 addr = zhdr;
1242 page = virt_to_page(zhdr);
1243
1244 if (test_bit(PAGE_HEADLESS, &page->private))
1245 goto out;
1246
2f1e5e4d 1247 z3fold_page_lock(zhdr);
9a001fc1
VW
1248 buddy = handle_to_buddy(handle);
1249 switch (buddy) {
1250 case FIRST:
1251 addr += ZHDR_SIZE_ALIGNED;
1252 break;
1253 case MIDDLE:
1254 addr += zhdr->start_middle << CHUNK_SHIFT;
1255 set_bit(MIDDLE_CHUNK_MAPPED, &page->private);
1256 break;
1257 case LAST:
ca0246bb 1258 addr += PAGE_SIZE - (handle_to_chunks(handle) << CHUNK_SHIFT);
9a001fc1
VW
1259 break;
1260 default:
1261 pr_err("unknown buddy id %d\n", buddy);
1262 WARN_ON(1);
1263 addr = NULL;
1264 break;
1265 }
2f1e5e4d 1266
1f862989
VW
1267 if (addr)
1268 zhdr->mapped_count++;
2f1e5e4d 1269 z3fold_page_unlock(zhdr);
9a001fc1 1270out:
9a001fc1
VW
1271 return addr;
1272}
1273
1274/**
1275 * z3fold_unmap() - unmaps the allocation associated with the given handle
1276 * @pool: pool in which the allocation resides
1277 * @handle: handle associated with the allocation to be unmapped
1278 */
1279static void z3fold_unmap(struct z3fold_pool *pool, unsigned long handle)
1280{
1281 struct z3fold_header *zhdr;
1282 struct page *page;
1283 enum buddy buddy;
1284
9a001fc1
VW
1285 zhdr = handle_to_z3fold_header(handle);
1286 page = virt_to_page(zhdr);
1287
2f1e5e4d 1288 if (test_bit(PAGE_HEADLESS, &page->private))
9a001fc1 1289 return;
9a001fc1 1290
2f1e5e4d 1291 z3fold_page_lock(zhdr);
9a001fc1
VW
1292 buddy = handle_to_buddy(handle);
1293 if (buddy == MIDDLE)
1294 clear_bit(MIDDLE_CHUNK_MAPPED, &page->private);
1f862989 1295 zhdr->mapped_count--;
2f1e5e4d 1296 z3fold_page_unlock(zhdr);
9a001fc1
VW
1297}
1298
1299/**
1300 * z3fold_get_pool_size() - gets the z3fold pool size in pages
1301 * @pool: pool whose size is being queried
1302 *
12d59ae6 1303 * Returns: size in pages of the given pool.
9a001fc1
VW
1304 */
1305static u64 z3fold_get_pool_size(struct z3fold_pool *pool)
1306{
12d59ae6 1307 return atomic64_read(&pool->pages_nr);
9a001fc1
VW
1308}
1309
1f862989
VW
1310static bool z3fold_page_isolate(struct page *page, isolate_mode_t mode)
1311{
1312 struct z3fold_header *zhdr;
1313 struct z3fold_pool *pool;
1314
1315 VM_BUG_ON_PAGE(!PageMovable(page), page);
1316 VM_BUG_ON_PAGE(PageIsolated(page), page);
1317
1318 if (test_bit(PAGE_HEADLESS, &page->private))
1319 return false;
1320
1321 zhdr = page_address(page);
1322 z3fold_page_lock(zhdr);
1323 if (test_bit(NEEDS_COMPACTING, &page->private) ||
1324 test_bit(PAGE_STALE, &page->private))
1325 goto out;
1326
1327 pool = zhdr_to_pool(zhdr);
1328
1329 if (zhdr->mapped_count == 0) {
1330 kref_get(&zhdr->refcount);
1331 if (!list_empty(&zhdr->buddy))
1332 list_del_init(&zhdr->buddy);
1333 spin_lock(&pool->lock);
1334 if (!list_empty(&page->lru))
1335 list_del(&page->lru);
1336 spin_unlock(&pool->lock);
1337 z3fold_page_unlock(zhdr);
1338 return true;
1339 }
1340out:
1341 z3fold_page_unlock(zhdr);
1342 return false;
1343}
1344
1345static int z3fold_page_migrate(struct address_space *mapping, struct page *newpage,
1346 struct page *page, enum migrate_mode mode)
1347{
1348 struct z3fold_header *zhdr, *new_zhdr;
1349 struct z3fold_pool *pool;
1350 struct address_space *new_mapping;
1351
1352 VM_BUG_ON_PAGE(!PageMovable(page), page);
1353 VM_BUG_ON_PAGE(!PageIsolated(page), page);
810481a2 1354 VM_BUG_ON_PAGE(!PageLocked(newpage), newpage);
1f862989
VW
1355
1356 zhdr = page_address(page);
1357 pool = zhdr_to_pool(zhdr);
1358
1f862989 1359 if (!z3fold_page_trylock(zhdr)) {
1f862989
VW
1360 return -EAGAIN;
1361 }
1362 if (zhdr->mapped_count != 0) {
1363 z3fold_page_unlock(zhdr);
1f862989
VW
1364 return -EBUSY;
1365 }
c92d2f38
HB
1366 if (work_pending(&zhdr->work)) {
1367 z3fold_page_unlock(zhdr);
1368 return -EAGAIN;
1369 }
1f862989
VW
1370 new_zhdr = page_address(newpage);
1371 memcpy(new_zhdr, zhdr, PAGE_SIZE);
1372 newpage->private = page->private;
1373 page->private = 0;
1374 z3fold_page_unlock(zhdr);
1375 spin_lock_init(&new_zhdr->page_lock);
c92d2f38
HB
1376 INIT_WORK(&new_zhdr->work, compact_page_work);
1377 /*
1378 * z3fold_page_isolate() ensures that new_zhdr->buddy is empty,
1379 * so we only have to reinitialize it.
1380 */
1381 INIT_LIST_HEAD(&new_zhdr->buddy);
1f862989
VW
1382 new_mapping = page_mapping(page);
1383 __ClearPageMovable(page);
1384 ClearPagePrivate(page);
1385
1386 get_page(newpage);
1387 z3fold_page_lock(new_zhdr);
1388 if (new_zhdr->first_chunks)
1389 encode_handle(new_zhdr, FIRST);
1390 if (new_zhdr->last_chunks)
1391 encode_handle(new_zhdr, LAST);
1392 if (new_zhdr->middle_chunks)
1393 encode_handle(new_zhdr, MIDDLE);
1394 set_bit(NEEDS_COMPACTING, &newpage->private);
1395 new_zhdr->cpu = smp_processor_id();
1396 spin_lock(&pool->lock);
1397 list_add(&newpage->lru, &pool->lru);
1398 spin_unlock(&pool->lock);
1399 __SetPageMovable(newpage, new_mapping);
1400 z3fold_page_unlock(new_zhdr);
1401
1402 queue_work_on(new_zhdr->cpu, pool->compact_wq, &new_zhdr->work);
1403
1404 page_mapcount_reset(page);
1f862989
VW
1405 put_page(page);
1406 return 0;
1407}
1408
1409static void z3fold_page_putback(struct page *page)
1410{
1411 struct z3fold_header *zhdr;
1412 struct z3fold_pool *pool;
1413
1414 zhdr = page_address(page);
1415 pool = zhdr_to_pool(zhdr);
1416
1417 z3fold_page_lock(zhdr);
1418 if (!list_empty(&zhdr->buddy))
1419 list_del_init(&zhdr->buddy);
1420 INIT_LIST_HEAD(&page->lru);
1421 if (kref_put(&zhdr->refcount, release_z3fold_page_locked)) {
1422 atomic64_dec(&pool->pages_nr);
1423 return;
1424 }
1425 spin_lock(&pool->lock);
1426 list_add(&page->lru, &pool->lru);
1427 spin_unlock(&pool->lock);
1428 z3fold_page_unlock(zhdr);
1429}
1430
1431static const struct address_space_operations z3fold_aops = {
1432 .isolate_page = z3fold_page_isolate,
1433 .migratepage = z3fold_page_migrate,
1434 .putback_page = z3fold_page_putback,
1435};
1436
9a001fc1
VW
1437/*****************
1438 * zpool
1439 ****************/
1440
1441static int z3fold_zpool_evict(struct z3fold_pool *pool, unsigned long handle)
1442{
1443 if (pool->zpool && pool->zpool_ops && pool->zpool_ops->evict)
1444 return pool->zpool_ops->evict(pool->zpool, handle);
1445 else
1446 return -ENOENT;
1447}
1448
1449static const struct z3fold_ops z3fold_zpool_ops = {
1450 .evict = z3fold_zpool_evict
1451};
1452
1453static void *z3fold_zpool_create(const char *name, gfp_t gfp,
1454 const struct zpool_ops *zpool_ops,
1455 struct zpool *zpool)
1456{
1457 struct z3fold_pool *pool;
1458
d30561c5
VW
1459 pool = z3fold_create_pool(name, gfp,
1460 zpool_ops ? &z3fold_zpool_ops : NULL);
9a001fc1
VW
1461 if (pool) {
1462 pool->zpool = zpool;
1463 pool->zpool_ops = zpool_ops;
1464 }
1465 return pool;
1466}
1467
1468static void z3fold_zpool_destroy(void *pool)
1469{
1470 z3fold_destroy_pool(pool);
1471}
1472
1473static int z3fold_zpool_malloc(void *pool, size_t size, gfp_t gfp,
1474 unsigned long *handle)
1475{
1476 return z3fold_alloc(pool, size, gfp, handle);
1477}
1478static void z3fold_zpool_free(void *pool, unsigned long handle)
1479{
1480 z3fold_free(pool, handle);
1481}
1482
1483static int z3fold_zpool_shrink(void *pool, unsigned int pages,
1484 unsigned int *reclaimed)
1485{
1486 unsigned int total = 0;
1487 int ret = -EINVAL;
1488
1489 while (total < pages) {
1490 ret = z3fold_reclaim_page(pool, 8);
1491 if (ret < 0)
1492 break;
1493 total++;
1494 }
1495
1496 if (reclaimed)
1497 *reclaimed = total;
1498
1499 return ret;
1500}
1501
1502static void *z3fold_zpool_map(void *pool, unsigned long handle,
1503 enum zpool_mapmode mm)
1504{
1505 return z3fold_map(pool, handle);
1506}
1507static void z3fold_zpool_unmap(void *pool, unsigned long handle)
1508{
1509 z3fold_unmap(pool, handle);
1510}
1511
1512static u64 z3fold_zpool_total_size(void *pool)
1513{
1514 return z3fold_get_pool_size(pool) * PAGE_SIZE;
1515}
1516
1517static struct zpool_driver z3fold_zpool_driver = {
1518 .type = "z3fold",
1519 .owner = THIS_MODULE,
1520 .create = z3fold_zpool_create,
1521 .destroy = z3fold_zpool_destroy,
1522 .malloc = z3fold_zpool_malloc,
1523 .free = z3fold_zpool_free,
1524 .shrink = z3fold_zpool_shrink,
1525 .map = z3fold_zpool_map,
1526 .unmap = z3fold_zpool_unmap,
1527 .total_size = z3fold_zpool_total_size,
1528};
1529
1530MODULE_ALIAS("zpool-z3fold");
1531
1532static int __init init_z3fold(void)
1533{
1f862989
VW
1534 int ret;
1535
ede93213
VW
1536 /* Make sure the z3fold header is not larger than the page size */
1537 BUILD_BUG_ON(ZHDR_SIZE_ALIGNED > PAGE_SIZE);
1f862989
VW
1538 ret = z3fold_mount();
1539 if (ret)
1540 return ret;
1541
9a001fc1
VW
1542 zpool_register_driver(&z3fold_zpool_driver);
1543
1544 return 0;
1545}
1546
1547static void __exit exit_z3fold(void)
1548{
1f862989 1549 z3fold_unmount();
9a001fc1
VW
1550 zpool_unregister_driver(&z3fold_zpool_driver);
1551}
1552
1553module_init(init_z3fold);
1554module_exit(exit_z3fold);
1555
1556MODULE_LICENSE("GPL");
1557MODULE_AUTHOR("Vitaly Wool <vitalywool@gmail.com>");
1558MODULE_DESCRIPTION("3-Fold Allocator for Compressed Pages");