1 /*
2 * Copyright (c) 2000-2020 Apple Inc. All rights reserved.
3 *
4 * @APPLE_OSREFERENCE_LICENSE_HEADER_START@
5 *
6 * This file contains Original Code and/or Modifications of Original Code
7 * as defined in and that are subject to the Apple Public Source License
8 * Version 2.0 (the 'License'). You may not use this file except in
9 * compliance with the License. The rights granted to you under the License
10 * may not be used to create, or enable the creation or redistribution of,
11 * unlawful or unlicensed copies of an Apple operating system, or to
12 * circumvent, violate, or enable the circumvention or violation of, any
13 * terms of an Apple operating system software license agreement.
14 *
15 * Please obtain a copy of the License at
16 * http://www.opensource.apple.com/apsl/ and read it before using this file.
17 *
18 * The Original Code and all software distributed under the License are
19 * distributed on an 'AS IS' basis, WITHOUT WARRANTY OF ANY KIND, EITHER
20 * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
21 * INCLUDING WITHOUT LIMITATION, ANY WARRANTIES OF MERCHANTABILITY,
22 * FITNESS FOR A PARTICULAR PURPOSE, QUIET ENJOYMENT OR NON-INFRINGEMENT.
23 * Please see the License for the specific language governing rights and
24 * limitations under the License.
25 *
26 * @APPLE_OSREFERENCE_LICENSE_HEADER_END@
27 */
28
29 #include <vm/vm_compressor.h>
30
31 #if CONFIG_PHANTOM_CACHE
32 #include <vm/vm_phantom_cache.h>
33 #endif
34
35 #include <vm/vm_map.h>
36 #include <vm/vm_pageout.h>
37 #include <vm/memory_object.h>
38 #include <vm/vm_compressor_algorithms.h>
39 #include <vm/vm_compressor_backing_store.h>
40 #include <vm/vm_fault.h>
41 #include <vm/vm_protos.h>
42 #include <mach/mach_host.h> /* for host_info() */
43 #if DEVELOPMENT || DEBUG
44 #include <kern/hvg_hypercall.h>
45 #endif
46 #include <kern/ledger.h>
47 #include <kern/policy_internal.h>
48 #include <kern/thread_group.h>
49 #include <san/kasan.h>
50 #include <os/log.h>
51 #include <pexpert/pexpert.h>
52 #include <pexpert/device_tree.h>
53
54 #if defined(__x86_64__)
55 #include <i386/misc_protos.h>
56 #endif
57 #if defined(__arm64__)
58 #include <arm/machine_routines.h>
59 #endif
60
61 #include <IOKit/IOHibernatePrivate.h>
62
63 /*
64 * The segment buffer size is a tradeoff.
65 * A larger buffer leads to faster I/O throughput, better compression ratios
66 * (since fewer bytes are wasted at the end of the segment),
67 * and less overhead (both in time and space).
68 * However, a smaller buffer causes less swap when the system is overcommited
69 * b/c a higher percentage of the swapped-in segment is definitely accessed
70 * before it goes back out to storage.
71 *
72 * So on systems without swap, a larger segment is a clear win.
73 * On systems with swap, the choice is murkier. Empirically, we've
74 * found that a 64KB segment provides a better tradeoff both in terms of
75 * performance and swap writes than a 256KB segment on systems with fast SSDs
76 * and a HW compression block.
77 */
78 #define C_SEG_BUFSIZE_ARM_SWAP (1024 * 64)
79 #if XNU_TARGET_OS_OSX && defined(__arm64__)
80 #define C_SEG_BUFSIZE_DEFAULT C_SEG_BUFSIZE_ARM_SWAP
81 #else
82 #define C_SEG_BUFSIZE_DEFAULT (1024 * 256)
83 #endif /* TARGET_OS_OSX && defined(__arm64__) */
84 uint32_t c_seg_bufsize;
85
86 uint32_t c_seg_max_pages, c_seg_off_limit, c_seg_allocsize, c_seg_slot_var_array_min_len;
87
88 extern boolean_t vm_darkwake_mode;
89 extern zone_t vm_page_zone;
90
91 #if DEVELOPMENT || DEBUG
92 /* sysctl defined in bsd/dev/arm64/sysctl.c */
93 int do_cseg_wedge_thread(void);
94 int do_cseg_unwedge_thread(void);
95 static event_t debug_cseg_wait_event = NULL;
96 #endif /* DEVELOPMENT || DEBUG */
97
98 #if CONFIG_FREEZE
99 bool freezer_incore_cseg_acct = TRUE; /* Only count incore compressed memory for jetsams. */
100 void task_disown_frozen_csegs(task_t owner_task);
101 #endif /* CONFIG_FREEZE */
102
103 #if POPCOUNT_THE_COMPRESSED_DATA
104 boolean_t popcount_c_segs = TRUE;
105
106 static inline uint32_t
vmc_pop(uintptr_t ins,int sz)107 vmc_pop(uintptr_t ins, int sz)
108 {
109 uint32_t rv = 0;
110
111 if (__probable(popcount_c_segs == FALSE)) {
112 return 0xDEAD707C;
113 }
114
115 while (sz >= 16) {
116 uint32_t rv1, rv2;
117 uint64_t *ins64 = (uint64_t *) ins;
118 uint64_t *ins642 = (uint64_t *) (ins + 8);
119 rv1 = __builtin_popcountll(*ins64);
120 rv2 = __builtin_popcountll(*ins642);
121 rv += rv1 + rv2;
122 sz -= 16;
123 ins += 16;
124 }
125
126 while (sz >= 4) {
127 uint32_t *ins32 = (uint32_t *) ins;
128 rv += __builtin_popcount(*ins32);
129 sz -= 4;
130 ins += 4;
131 }
132
133 while (sz > 0) {
134 char *ins8 = (char *)ins;
135 rv += __builtin_popcount(*ins8);
136 sz--;
137 ins++;
138 }
139 return rv;
140 }
141 #endif
142
143 #if VALIDATE_C_SEGMENTS
144 boolean_t validate_c_segs = TRUE;
145 #endif
146 /*
147 * vm_compressor_mode has a hierarchy of control to set its value.
148 * boot-args are checked first, then device-tree, and finally
149 * the default value that is defined below. See vm_fault_init() for
150 * the boot-arg & device-tree code.
151 */
152
153 #if !XNU_TARGET_OS_OSX
154
155 #if CONFIG_FREEZE
156 int vm_compressor_mode = VM_PAGER_FREEZER_DEFAULT;
157 struct freezer_context freezer_context_global;
158 #else /* CONFIG_FREEZE */
159 int vm_compressor_mode = VM_PAGER_NOT_CONFIGURED;
160 #endif /* CONFIG_FREEZE */
161
162 #else /* !XNU_TARGET_OS_OSX */
163 int vm_compressor_mode = VM_PAGER_COMPRESSOR_WITH_SWAP;
164
165 #endif /* !XNU_TARGET_OS_OSX */
166
167 TUNABLE(uint32_t, vm_compression_limit, "vm_compression_limit", 0);
168 int vm_compressor_is_active = 0;
169 int vm_compressor_available = 0;
170
171 extern uint64_t vm_swap_get_max_configured_space(void);
172 extern void vm_pageout_io_throttle(void);
173 bool vm_compressor_swapout_is_ripe(void);
174
175 #if CHECKSUM_THE_DATA || CHECKSUM_THE_SWAP || CHECKSUM_THE_COMPRESSED_DATA
176 extern unsigned int hash_string(char *cp, int len);
177 static unsigned int vmc_hash(char *, int);
178 boolean_t checksum_c_segs = TRUE;
179
180 unsigned int
vmc_hash(char * cp,int len)181 vmc_hash(char *cp, int len)
182 {
183 if (__probable(checksum_c_segs == FALSE)) {
184 return 0xDEAD7A37;
185 }
186 return hash_string(cp, len);
187 }
188 #endif
189
190 #define UNPACK_C_SIZE(cs) ((cs->c_size == (PAGE_SIZE-1)) ? PAGE_SIZE : cs->c_size)
191 #define PACK_C_SIZE(cs, size) (cs->c_size = ((size == PAGE_SIZE) ? PAGE_SIZE - 1 : size))
192
193
194 struct c_sv_hash_entry {
195 union {
196 struct {
197 uint32_t c_sv_he_ref;
198 uint32_t c_sv_he_data;
199 } c_sv_he;
200 uint64_t c_sv_he_record;
201 } c_sv_he_un;
202 };
203
204 #define he_ref c_sv_he_un.c_sv_he.c_sv_he_ref
205 #define he_data c_sv_he_un.c_sv_he.c_sv_he_data
206 #define he_record c_sv_he_un.c_sv_he_record
207
208 #define C_SV_HASH_MAX_MISS 32
209 #define C_SV_HASH_SIZE ((1 << 10))
210 #define C_SV_HASH_MASK ((1 << 10) - 1)
211 #define C_SV_CSEG_ID ((1 << 22) - 1)
212
213
214 union c_segu {
215 c_segment_t c_seg;
216 uintptr_t c_segno;
217 };
218
219 #define C_SLOT_ASSERT_PACKABLE(ptr) \
220 VM_ASSERT_POINTER_PACKABLE((vm_offset_t)(ptr), C_SLOT_PACKED_PTR);
221
222 #define C_SLOT_PACK_PTR(ptr) \
223 VM_PACK_POINTER((vm_offset_t)(ptr), C_SLOT_PACKED_PTR)
224
225 #define C_SLOT_UNPACK_PTR(cslot) \
226 (c_slot_mapping_t)VM_UNPACK_POINTER((cslot)->c_packed_ptr, C_SLOT_PACKED_PTR)
227
228 /* for debugging purposes */
229 SECURITY_READ_ONLY_EARLY(vm_packing_params_t) c_slot_packing_params =
230 VM_PACKING_PARAMS(C_SLOT_PACKED_PTR);
231
232 uint32_t c_segment_count = 0;
233 uint32_t c_segment_count_max = 0;
234
235 uint64_t c_generation_id = 0;
236 uint64_t c_generation_id_flush_barrier;
237
238
239 #define HIBERNATE_FLUSHING_SECS_TO_COMPLETE 120
240
241 boolean_t hibernate_no_swapspace = FALSE;
242 boolean_t hibernate_flush_timed_out = FALSE;
243 clock_sec_t hibernate_flushing_deadline = 0;
244
245 #if RECORD_THE_COMPRESSED_DATA
246 char *c_compressed_record_sbuf;
247 char *c_compressed_record_ebuf;
248 char *c_compressed_record_cptr;
249 #endif
250
251
252 queue_head_t c_age_list_head;
253 queue_head_t c_early_swappedin_list_head, c_regular_swappedin_list_head, c_late_swappedin_list_head;
254 queue_head_t c_early_swapout_list_head, c_regular_swapout_list_head, c_late_swapout_list_head;
255 queue_head_t c_swapio_list_head;
256 queue_head_t c_swappedout_list_head;
257 queue_head_t c_swappedout_sparse_list_head;
258 queue_head_t c_major_list_head;
259 queue_head_t c_filling_list_head;
260 queue_head_t c_bad_list_head;
261
262 uint32_t c_age_count = 0;
263 uint32_t c_early_swappedin_count = 0, c_regular_swappedin_count = 0, c_late_swappedin_count = 0;
264 uint32_t c_early_swapout_count = 0, c_regular_swapout_count = 0, c_late_swapout_count = 0;
265 uint32_t c_swapio_count = 0;
266 uint32_t c_swappedout_count = 0;
267 uint32_t c_swappedout_sparse_count = 0;
268 uint32_t c_major_count = 0;
269 uint32_t c_filling_count = 0;
270 uint32_t c_empty_count = 0;
271 uint32_t c_bad_count = 0;
272
273
274 queue_head_t c_minor_list_head;
275 uint32_t c_minor_count = 0;
276
277 int c_overage_swapped_count = 0;
278 int c_overage_swapped_limit = 0;
279
280 int c_seg_fixed_array_len;
281 union c_segu *c_segments;
282 vm_offset_t c_buffers;
283 vm_size_t c_buffers_size;
284 caddr_t c_segments_next_page;
285 boolean_t c_segments_busy;
286 uint32_t c_segments_available;
287 uint32_t c_segments_limit;
288 uint32_t c_segments_nearing_limit;
289
290 uint32_t c_segment_svp_in_hash;
291 uint32_t c_segment_svp_hash_succeeded;
292 uint32_t c_segment_svp_hash_failed;
293 uint32_t c_segment_svp_zero_compressions;
294 uint32_t c_segment_svp_nonzero_compressions;
295 uint32_t c_segment_svp_zero_decompressions;
296 uint32_t c_segment_svp_nonzero_decompressions;
297
298 uint32_t c_segment_noncompressible_pages;
299
300 uint32_t c_segment_pages_compressed = 0; /* Tracks # of uncompressed pages fed into the compressor */
301 #if CONFIG_FREEZE
302 int32_t c_segment_pages_compressed_incore = 0; /* Tracks # of uncompressed pages fed into the compressor that are in memory */
303 int32_t c_segment_pages_compressed_incore_late_swapout = 0; /* Tracks # of uncompressed pages fed into the compressor that are in memory and tagged for swapout */
304 uint32_t c_segments_incore_limit = 0; /* Tracks # of segments allowed to be in-core. Based on compressor pool size */
305 #endif /* CONFIG_FREEZE */
306
307 uint32_t c_segment_pages_compressed_limit;
308 uint32_t c_segment_pages_compressed_nearing_limit;
309 uint32_t c_free_segno_head = (uint32_t)-1;
310
311 uint32_t vm_compressor_minorcompact_threshold_divisor = 10;
312 uint32_t vm_compressor_majorcompact_threshold_divisor = 10;
313 uint32_t vm_compressor_unthrottle_threshold_divisor = 10;
314 uint32_t vm_compressor_catchup_threshold_divisor = 10;
315
316 uint32_t vm_compressor_minorcompact_threshold_divisor_overridden = 0;
317 uint32_t vm_compressor_majorcompact_threshold_divisor_overridden = 0;
318 uint32_t vm_compressor_unthrottle_threshold_divisor_overridden = 0;
319 uint32_t vm_compressor_catchup_threshold_divisor_overridden = 0;
320
321 #define C_SEGMENTS_PER_PAGE (PAGE_SIZE / sizeof(union c_segu))
322
323 LCK_GRP_DECLARE(vm_compressor_lck_grp, "vm_compressor");
324 LCK_RW_DECLARE(c_master_lock, &vm_compressor_lck_grp);
325 LCK_MTX_DECLARE(c_list_lock_storage, &vm_compressor_lck_grp);
326
327 boolean_t decompressions_blocked = FALSE;
328
329 zone_t compressor_segment_zone;
330 int c_compressor_swap_trigger = 0;
331
332 uint32_t compressor_cpus;
333 char *compressor_scratch_bufs;
334 char *kdp_compressor_scratch_buf;
335 char *kdp_compressor_decompressed_page;
336 addr64_t kdp_compressor_decompressed_page_paddr;
337 ppnum_t kdp_compressor_decompressed_page_ppnum;
338
339 clock_sec_t start_of_sample_period_sec = 0;
340 clock_nsec_t start_of_sample_period_nsec = 0;
341 clock_sec_t start_of_eval_period_sec = 0;
342 clock_nsec_t start_of_eval_period_nsec = 0;
343 uint32_t sample_period_decompression_count = 0;
344 uint32_t sample_period_compression_count = 0;
345 uint32_t last_eval_decompression_count = 0;
346 uint32_t last_eval_compression_count = 0;
347
348 #define DECOMPRESSION_SAMPLE_MAX_AGE (60 * 30)
349
350 boolean_t vm_swapout_ripe_segments = FALSE;
351 uint32_t vm_ripe_target_age = (60 * 60 * 48);
352
353 uint32_t swapout_target_age = 0;
354 uint32_t age_of_decompressions_during_sample_period[DECOMPRESSION_SAMPLE_MAX_AGE];
355 uint32_t overage_decompressions_during_sample_period = 0;
356
357
358 void do_fastwake_warmup(queue_head_t *, boolean_t);
359 boolean_t fastwake_warmup = FALSE;
360 boolean_t fastwake_recording_in_progress = FALSE;
361 clock_sec_t dont_trim_until_ts = 0;
362
363 uint64_t c_segment_warmup_count;
364 uint64_t first_c_segment_to_warm_generation_id = 0;
365 uint64_t last_c_segment_to_warm_generation_id = 0;
366 boolean_t hibernate_flushing = FALSE;
367
368 int64_t c_segment_input_bytes __attribute__((aligned(8))) = 0;
369 int64_t c_segment_compressed_bytes __attribute__((aligned(8))) = 0;
370 int64_t compressor_bytes_used __attribute__((aligned(8))) = 0;
371
372 /* Keeps track of the most recent timestamp for when major compaction finished. */
373 mach_timespec_t major_compact_ts;
374
375 struct c_sv_hash_entry c_segment_sv_hash_table[C_SV_HASH_SIZE] __attribute__ ((aligned(8)));
376
377 static void vm_compressor_swap_trigger_thread(void);
378 static void vm_compressor_do_delayed_compactions(boolean_t);
379 static void vm_compressor_compact_and_swap(boolean_t);
380 static void vm_compressor_process_regular_swapped_in_segments(boolean_t);
381 void vm_compressor_process_special_swapped_in_segments(void);
382 static void vm_compressor_process_special_swapped_in_segments_locked(void);
383
384 struct vm_compressor_swapper_stats vmcs_stats;
385
386 #if XNU_TARGET_OS_OSX
387 #if (__arm64__)
388 static void vm_compressor_process_major_segments(void);
389 #endif /* (__arm64__) */
390 static void vm_compressor_take_paging_space_action(void);
391 #endif /* XNU_TARGET_OS_OSX */
392
393 void compute_swapout_target_age(void);
394
395 boolean_t c_seg_major_compact(c_segment_t, c_segment_t);
396 boolean_t c_seg_major_compact_ok(c_segment_t, c_segment_t);
397
398 int c_seg_minor_compaction_and_unlock(c_segment_t, boolean_t);
399 int c_seg_do_minor_compaction_and_unlock(c_segment_t, boolean_t, boolean_t, boolean_t);
400 void c_seg_try_minor_compaction_and_unlock(c_segment_t c_seg);
401
402 void c_seg_move_to_sparse_list(c_segment_t);
403 void c_seg_insert_into_q(queue_head_t *, c_segment_t);
404
405 uint64_t vm_available_memory(void);
406 uint64_t vm_compressor_pages_compressed(void);
407 uint32_t vm_compressor_pool_size(void);
408 uint32_t vm_compressor_fragmentation_level(void);
409 uint32_t vm_compression_ratio(void);
410
411 /*
412 * indicate the need to do a major compaction if
413 * the overall set of in-use compression segments
414 * becomes sparse... on systems that support pressure
415 * driven swapping, this will also cause swapouts to
416 * be initiated.
417 */
418 static inline bool
vm_compressor_needs_to_major_compact()419 vm_compressor_needs_to_major_compact()
420 {
421 uint32_t incore_seg_count;
422
423 incore_seg_count = c_segment_count - c_swappedout_count - c_swappedout_sparse_count;
424
425 if ((c_segment_count >= (c_segments_nearing_limit / 8)) &&
426 ((incore_seg_count * c_seg_max_pages) - VM_PAGE_COMPRESSOR_COUNT) >
427 ((incore_seg_count / 8) * c_seg_max_pages)) {
428 return true;
429 }
430 return false;
431 }
432
433
434 uint64_t
vm_available_memory(void)435 vm_available_memory(void)
436 {
437 return ((uint64_t)AVAILABLE_NON_COMPRESSED_MEMORY) * PAGE_SIZE_64;
438 }
439
440
441 uint32_t
vm_compressor_pool_size(void)442 vm_compressor_pool_size(void)
443 {
444 return VM_PAGE_COMPRESSOR_COUNT;
445 }
446
447 uint32_t
vm_compressor_fragmentation_level(void)448 vm_compressor_fragmentation_level(void)
449 {
450 const uint32_t incore_seg_count = c_segment_count - c_swappedout_count - c_swappedout_sparse_count;
451 if ((incore_seg_count == 0) || (c_seg_max_pages == 0)) {
452 return 0;
453 }
454 return 100 - (vm_compressor_pool_size() * 100 / (incore_seg_count * c_seg_max_pages));
455 }
456
457 uint32_t
vm_compression_ratio(void)458 vm_compression_ratio(void)
459 {
460 if (vm_compressor_pool_size() == 0) {
461 return UINT32_MAX;
462 }
463 return c_segment_pages_compressed / vm_compressor_pool_size();
464 }
465
466 uint64_t
vm_compressor_pages_compressed(void)467 vm_compressor_pages_compressed(void)
468 {
469 return c_segment_pages_compressed * PAGE_SIZE_64;
470 }
471
472 bool
vm_compressor_compressed_pages_nearing_limit(void)473 vm_compressor_compressed_pages_nearing_limit(void)
474 {
475 uint32_t pages = 0;
476
477 #if CONFIG_FREEZE
478 pages = os_atomic_load(&c_segment_pages_compressed_incore, relaxed);
479 #else /* CONFIG_FREEZE */
480 pages = c_segment_pages_compressed;
481 #endif /* CONFIG_FREEZE */
482
483 return pages > c_segment_pages_compressed_nearing_limit;
484 }
485
486 static bool
vm_compressor_segments_nearing_limit(void)487 vm_compressor_segments_nearing_limit(void)
488 {
489 uint64_t segments;
490
491 #if CONFIG_FREEZE
492 if (freezer_incore_cseg_acct) {
493 if (os_sub_overflow(c_segment_count, c_swappedout_count, &segments)) {
494 segments = 0;
495 }
496 if (os_sub_overflow(segments, c_swappedout_sparse_count, &segments)) {
497 segments = 0;
498 }
499 } else {
500 segments = os_atomic_load(&c_segment_count, relaxed);
501 }
502 #else /* CONFIG_FREEZE */
503 segments = c_segment_count;
504 #endif /* CONFIG_FREEZE */
505
506 return segments > c_segments_nearing_limit;
507 }
508
509 boolean_t
vm_compressor_low_on_space(void)510 vm_compressor_low_on_space(void)
511 {
512 return vm_compressor_compressed_pages_nearing_limit() ||
513 vm_compressor_segments_nearing_limit();
514 }
515
516
517 boolean_t
vm_compressor_out_of_space(void)518 vm_compressor_out_of_space(void)
519 {
520 #if CONFIG_FREEZE
521 uint64_t incore_seg_count;
522 uint32_t incore_compressed_pages;
523 if (freezer_incore_cseg_acct) {
524 if (os_sub_overflow(c_segment_count, c_swappedout_count, &incore_seg_count)) {
525 incore_seg_count = 0;
526 }
527 if (os_sub_overflow(incore_seg_count, c_swappedout_sparse_count, &incore_seg_count)) {
528 incore_seg_count = 0;
529 }
530 incore_compressed_pages = os_atomic_load(&c_segment_pages_compressed_incore, relaxed);
531 } else {
532 incore_seg_count = os_atomic_load(&c_segment_count, relaxed);
533 incore_compressed_pages = os_atomic_load(&c_segment_pages_compressed_incore, relaxed);
534 }
535
536 if ((incore_compressed_pages >= c_segment_pages_compressed_limit) ||
537 (incore_seg_count > c_segments_incore_limit)) {
538 return TRUE;
539 }
540 #else /* CONFIG_FREEZE */
541 if ((c_segment_pages_compressed >= c_segment_pages_compressed_limit) ||
542 (c_segment_count >= c_segments_limit)) {
543 return TRUE;
544 }
545 #endif /* CONFIG_FREEZE */
546 return FALSE;
547 }
548
549 bool
vm_compressor_is_thrashing()550 vm_compressor_is_thrashing()
551 {
552 compute_swapout_target_age();
553
554 if (swapout_target_age) {
555 c_segment_t c_seg;
556
557 lck_mtx_lock_spin_always(c_list_lock);
558
559 if (!queue_empty(&c_age_list_head)) {
560 c_seg = (c_segment_t) queue_first(&c_age_list_head);
561
562 if (c_seg->c_creation_ts > swapout_target_age) {
563 swapout_target_age = 0;
564 }
565 }
566 lck_mtx_unlock_always(c_list_lock);
567 }
568
569 return swapout_target_age != 0;
570 }
571
572
573 int
vm_wants_task_throttled(task_t task)574 vm_wants_task_throttled(task_t task)
575 {
576 ledger_amount_t compressed;
577 if (task == kernel_task) {
578 return 0;
579 }
580
581 if (VM_CONFIG_SWAP_IS_ACTIVE) {
582 if ((vm_compressor_low_on_space() || HARD_THROTTLE_LIMIT_REACHED())) {
583 ledger_get_balance(task->ledger, task_ledgers.internal_compressed, &compressed);
584 compressed >>= VM_MAP_PAGE_SHIFT(task->map);
585 if ((unsigned int)compressed > (c_segment_pages_compressed / 4)) {
586 return 1;
587 }
588 }
589 }
590 return 0;
591 }
592
593
594 #if DEVELOPMENT || DEBUG
595 /*
596 * On compressor/swap exhaustion, kill the largest process regardless of
597 * its chosen process policy.
598 */
599 TUNABLE(bool, kill_on_no_paging_space, "-kill_on_no_paging_space", false);
600 #endif /* DEVELOPMENT || DEBUG */
601
602 #if CONFIG_JETSAM
603 boolean_t memorystatus_kill_on_VM_compressor_space_shortage(boolean_t);
604 void memorystatus_thread_wake(void);
605 extern uint32_t jetsam_kill_on_low_swap;
606 bool memorystatus_disable_swap(void);
607 #if CONFIG_PHANTOM_CACHE
608 extern bool memorystatus_phantom_cache_pressure;
609 #endif /* CONFIG_PHANTOM_CACHE */
610 int compressor_thrashing_induced_jetsam = 0;
611 int filecache_thrashing_induced_jetsam = 0;
612 static boolean_t vm_compressor_thrashing_detected = FALSE;
613 #else /* CONFIG_JETSAM */
614 static uint32_t no_paging_space_action_in_progress = 0;
615 extern void memorystatus_send_low_swap_note(void);
616 #endif /* CONFIG_JETSAM */
617
618 static void
vm_compressor_take_paging_space_action(void)619 vm_compressor_take_paging_space_action(void)
620 {
621 #if CONFIG_JETSAM
622 /*
623 * On systems with both swap and jetsam,
624 * just wake up the jetsam thread and have it handle the low swap condition
625 * by killing apps.
626 */
627 if (jetsam_kill_on_low_swap) {
628 memorystatus_thread_wake();
629 }
630 #else /* CONFIG_JETSAM */
631 if (no_paging_space_action_in_progress == 0) {
632 if (OSCompareAndSwap(0, 1, (UInt32 *)&no_paging_space_action_in_progress)) {
633 if (no_paging_space_action()) {
634 #if DEVELOPMENT || DEBUG
635 if (kill_on_no_paging_space) {
636 /*
637 * Since we are choosing to always kill a process, we don't need the
638 * "out of application memory" dialog box in this mode. And, hence we won't
639 * send the knote.
640 */
641 no_paging_space_action_in_progress = 0;
642 return;
643 }
644 #endif /* DEVELOPMENT || DEBUG */
645 memorystatus_send_low_swap_note();
646 }
647
648 no_paging_space_action_in_progress = 0;
649 }
650 }
651 #endif /* !CONFIG_JETSAM */
652 }
653
654
655 void
vm_decompressor_lock(void)656 vm_decompressor_lock(void)
657 {
658 PAGE_REPLACEMENT_ALLOWED(TRUE);
659
660 decompressions_blocked = TRUE;
661
662 PAGE_REPLACEMENT_ALLOWED(FALSE);
663 }
664
665 void
vm_decompressor_unlock(void)666 vm_decompressor_unlock(void)
667 {
668 PAGE_REPLACEMENT_ALLOWED(TRUE);
669
670 decompressions_blocked = FALSE;
671
672 PAGE_REPLACEMENT_ALLOWED(FALSE);
673
674 thread_wakeup((event_t)&decompressions_blocked);
675 }
676
677 static inline void
cslot_copy(c_slot_t cdst,c_slot_t csrc)678 cslot_copy(c_slot_t cdst, c_slot_t csrc)
679 {
680 #if CHECKSUM_THE_DATA
681 cdst->c_hash_data = csrc->c_hash_data;
682 #endif
683 #if CHECKSUM_THE_COMPRESSED_DATA
684 cdst->c_hash_compressed_data = csrc->c_hash_compressed_data;
685 #endif
686 #if POPCOUNT_THE_COMPRESSED_DATA
687 cdst->c_pop_cdata = csrc->c_pop_cdata;
688 #endif
689 cdst->c_size = csrc->c_size;
690 cdst->c_packed_ptr = csrc->c_packed_ptr;
691 #if defined(__arm64__)
692 cdst->c_codec = csrc->c_codec;
693 #endif
694 }
695
696 #if XNU_TARGET_OS_OSX
697 #define VM_COMPRESSOR_MAX_POOL_SIZE (192UL << 30)
698 #else
699 #define VM_COMPRESSOR_MAX_POOL_SIZE (0)
700 #endif
701
702 static vm_map_size_t compressor_size;
703 static SECURITY_READ_ONLY_LATE(struct mach_vm_range) compressor_range;
704 vm_map_t compressor_map;
705 uint64_t compressor_pool_max_size;
706 uint64_t compressor_pool_size;
707 uint32_t compressor_pool_multiplier;
708
709 #if DEVELOPMENT || DEBUG
710 /*
711 * Compressor segments are write-protected in development/debug
712 * kernels to help debug memory corruption.
713 * In cases where performance is a concern, this can be disabled
714 * via the boot-arg "-disable_cseg_write_protection".
715 */
716 boolean_t write_protect_c_segs = TRUE;
717 int vm_compressor_test_seg_wp;
718 uint32_t vm_ktrace_enabled;
719 #endif /* DEVELOPMENT || DEBUG */
720
721 #if (XNU_TARGET_OS_OSX && __arm64__)
722
723 #include <IOKit/IOPlatformExpert.h>
724 #include <sys/random.h>
725
726 static const char *csegbufsizeExperimentProperty = "_csegbufsz_experiment";
727 static thread_call_t csegbufsz_experiment_thread_call;
728
729 extern boolean_t IOServiceWaitForMatchingResource(const char * property, uint64_t timeout);
730 static void
erase_csegbufsz_experiment_property(__unused void * param0,__unused void * param1)731 erase_csegbufsz_experiment_property(__unused void *param0, __unused void *param1)
732 {
733 // Wait for NVRAM to be writable
734 if (!IOServiceWaitForMatchingResource("IONVRAM", UINT64_MAX)) {
735 printf("csegbufsz_experiment_property: Failed to wait for IONVRAM.");
736 }
737
738 if (!PERemoveNVRAMProperty(csegbufsizeExperimentProperty)) {
739 printf("csegbufsize_experiment_property: Failed to remove %s from NVRAM.", csegbufsizeExperimentProperty);
740 }
741 thread_call_free(csegbufsz_experiment_thread_call);
742 }
743
744 static void
erase_csegbufsz_experiment_property_async()745 erase_csegbufsz_experiment_property_async()
746 {
747 csegbufsz_experiment_thread_call = thread_call_allocate_with_priority(
748 erase_csegbufsz_experiment_property,
749 NULL,
750 THREAD_CALL_PRIORITY_LOW
751 );
752 if (csegbufsz_experiment_thread_call == NULL) {
753 printf("csegbufsize_experiment_property: Unable to allocate thread call.");
754 } else {
755 thread_call_enter(csegbufsz_experiment_thread_call);
756 }
757 }
758
759 static void
cleanup_csegbufsz_experiment(__unused void * arg0)760 cleanup_csegbufsz_experiment(__unused void *arg0)
761 {
762 char nvram = 0;
763 unsigned int len = sizeof(nvram);
764 if (PEReadNVRAMProperty(csegbufsizeExperimentProperty, &nvram, &len)) {
765 erase_csegbufsz_experiment_property_async();
766 }
767 }
768
769 STARTUP_ARG(EARLY_BOOT, STARTUP_RANK_FIRST, cleanup_csegbufsz_experiment, NULL);
770 #endif /* XNU_TARGET_OS_OSX && __arm64__ */
771
772 #if CONFIG_JETSAM
773 extern unsigned int memorystatus_swap_all_apps;
774 #endif /* CONFIG_JETSAM */
775
776 TUNABLE_DT(uint64_t, swap_vol_min_capacity, "/defaults", "kern.swap_min_capacity", "kern.swap_min_capacity", 0, TUNABLE_DT_NONE);
777
778 static void
vm_compressor_set_size(void)779 vm_compressor_set_size(void)
780 {
781 /*
782 * Note that this function may be called multiple times on systems with app swap
783 * because the value of vm_swap_get_max_configured_space() and memorystatus_swap_all_apps
784 * can change based the size of the swap volume. On these systems, we'll call
785 * this function once early in boot to reserve the maximum amount of VA required
786 * for the compressor submap and then one more time in vm_compressor_init after
787 * determining the swap volume size. We must not return a larger value the second
788 * time around.
789 */
790 vm_size_t c_segments_arr_size = 0;
791 struct c_slot_mapping tmp_slot_ptr;
792
793 /* The segment size can be overwritten by a boot-arg */
794 if (!PE_parse_boot_argn("vm_compressor_segment_buffer_size", &c_seg_bufsize, sizeof(c_seg_bufsize))) {
795 #if CONFIG_JETSAM
796 if (memorystatus_swap_all_apps) {
797 c_seg_bufsize = C_SEG_BUFSIZE_ARM_SWAP;
798 } else {
799 c_seg_bufsize = C_SEG_BUFSIZE_DEFAULT;
800 }
801 #else
802 c_seg_bufsize = C_SEG_BUFSIZE_DEFAULT;
803 #endif /* CONFIG_JETSAM */
804 }
805
806 vm_compressor_swap_init_swap_file_limit();
807 if (vm_compression_limit) {
808 compressor_pool_size = ptoa_64(vm_compression_limit);
809 }
810
811 compressor_pool_max_size = C_SEG_MAX_LIMIT;
812 compressor_pool_max_size *= c_seg_bufsize;
813
814 #if XNU_TARGET_OS_OSX
815
816 if (vm_compression_limit == 0) {
817 if (max_mem <= (4ULL * 1024ULL * 1024ULL * 1024ULL)) {
818 compressor_pool_size = 16ULL * max_mem;
819 } else if (max_mem <= (8ULL * 1024ULL * 1024ULL * 1024ULL)) {
820 compressor_pool_size = 8ULL * max_mem;
821 } else if (max_mem <= (32ULL * 1024ULL * 1024ULL * 1024ULL)) {
822 compressor_pool_size = 4ULL * max_mem;
823 } else {
824 compressor_pool_size = 2ULL * max_mem;
825 }
826 }
827 /*
828 * Cap the compressor pool size to a max of 192G
829 */
830 if (compressor_pool_size > VM_COMPRESSOR_MAX_POOL_SIZE) {
831 compressor_pool_size = VM_COMPRESSOR_MAX_POOL_SIZE;
832 }
833 if (max_mem <= (8ULL * 1024ULL * 1024ULL * 1024ULL)) {
834 compressor_pool_multiplier = 1;
835 } else if (max_mem <= (32ULL * 1024ULL * 1024ULL * 1024ULL)) {
836 compressor_pool_multiplier = 2;
837 } else {
838 compressor_pool_multiplier = 4;
839 }
840
841 #elif defined(__arm64__) && defined(XNU_TARGET_OS_WATCH)
842
843 /*
844 * On M9 watches the compressor can become big and can lead to
845 * churn in workingset resulting in audio drops. Setting a cap
846 * on the compressor size favors reclaiming unused memory
847 * sitting in idle band via jetsams
848 */
849
850 #define COMPRESSOR_CAP_PERCENTAGE 37ULL
851
852 if (compressor_pool_max_size > max_mem) {
853 compressor_pool_max_size = max_mem;
854 }
855
856 if (vm_compression_limit == 0) {
857 compressor_pool_size = (max_mem * COMPRESSOR_CAP_PERCENTAGE) / 100ULL;
858 }
859 compressor_pool_multiplier = 1;
860
861 #else
862
863 if (compressor_pool_max_size > max_mem) {
864 compressor_pool_max_size = max_mem;
865 }
866
867 if (vm_compression_limit == 0) {
868 compressor_pool_size = max_mem;
869 }
870 compressor_pool_multiplier = 1;
871 #endif
872 if (compressor_pool_size > compressor_pool_max_size) {
873 compressor_pool_size = compressor_pool_max_size;
874 }
875
876 c_seg_max_pages = (c_seg_bufsize / PAGE_SIZE);
877 c_seg_slot_var_array_min_len = c_seg_max_pages;
878
879 #if !defined(__x86_64__)
880 c_seg_off_limit = (C_SEG_BYTES_TO_OFFSET((c_seg_bufsize - 512)));
881 c_seg_allocsize = (c_seg_bufsize + PAGE_SIZE);
882 #else
883 c_seg_off_limit = (C_SEG_BYTES_TO_OFFSET((c_seg_bufsize - 128)));
884 c_seg_allocsize = c_seg_bufsize;
885 #endif /* !defined(__x86_64__) */
886
887 c_segments_limit = (uint32_t)(compressor_pool_size / (vm_size_t)(c_seg_allocsize));
888 tmp_slot_ptr.s_cseg = c_segments_limit;
889 /* Panic on internal configs*/
890 assertf((tmp_slot_ptr.s_cseg == c_segments_limit), "vm_compressor_init: overflowed s_cseg field in c_slot_mapping with c_segno: %d", c_segments_limit);
891
892 if (tmp_slot_ptr.s_cseg != c_segments_limit) {
893 tmp_slot_ptr.s_cseg = -1;
894 c_segments_limit = tmp_slot_ptr.s_cseg - 1; /*limited by segment idx bits in c_slot_mapping*/
895 compressor_pool_size = (c_segments_limit * (vm_size_t)(c_seg_allocsize));
896 }
897
898 c_segments_nearing_limit = (uint32_t)(((uint64_t)c_segments_limit * 98ULL) / 100ULL);
899
900 c_segment_pages_compressed_limit = (c_segments_limit * (c_seg_bufsize / PAGE_SIZE) * compressor_pool_multiplier);
901
902 if (c_segment_pages_compressed_limit < (uint32_t)(max_mem / PAGE_SIZE)) {
903 #if defined(XNU_TARGET_OS_WATCH)
904 c_segment_pages_compressed_limit = (uint32_t)(max_mem / PAGE_SIZE);
905 #else
906 if (!vm_compression_limit) {
907 c_segment_pages_compressed_limit = (uint32_t)(max_mem / PAGE_SIZE);
908 }
909 #endif
910 }
911
912 c_segment_pages_compressed_nearing_limit = (uint32_t)(((uint64_t)c_segment_pages_compressed_limit * 98ULL) / 100ULL);
913
914 #if CONFIG_FREEZE
915 /*
916 * Our in-core limits are based on the size of the compressor pool.
917 * The c_segments_nearing_limit is also based on the compressor pool
918 * size and calculated above.
919 */
920 c_segments_incore_limit = c_segments_limit;
921
922 if (freezer_incore_cseg_acct) {
923 /*
924 * Add enough segments to track all frozen c_segs that can be stored in swap.
925 */
926 c_segments_limit += (uint32_t)(vm_swap_get_max_configured_space() / (vm_size_t)(c_seg_allocsize));
927 tmp_slot_ptr.s_cseg = c_segments_limit;
928 /* Panic on internal configs*/
929 assertf((tmp_slot_ptr.s_cseg == c_segments_limit), "vm_compressor_init: freezer reserve overflowed s_cseg field in c_slot_mapping with c_segno: %d", c_segments_limit);
930 }
931 #endif
932 /*
933 * Submap needs space for:
934 * - c_segments
935 * - c_buffers
936 * - swap reclaimations -- c_seg_bufsize
937 */
938 c_segments_arr_size = vm_map_round_page((sizeof(union c_segu) * c_segments_limit), VM_MAP_PAGE_MASK(kernel_map));
939 c_buffers_size = vm_map_round_page(((vm_size_t)c_seg_allocsize * (vm_size_t)c_segments_limit), VM_MAP_PAGE_MASK(kernel_map));
940
941 compressor_size = c_segments_arr_size + c_buffers_size + c_seg_bufsize;
942
943 #if RECORD_THE_COMPRESSED_DATA
944 c_compressed_record_sbuf_size = (vm_size_t)c_seg_allocsize + (PAGE_SIZE * 2);
945 compressor_size += c_compressed_record_sbuf_size;
946 #endif /* RECORD_THE_COMPRESSED_DATA */
947 }
948 STARTUP(KMEM, STARTUP_RANK_FIRST, vm_compressor_set_size);
949
950 KMEM_RANGE_REGISTER_DYNAMIC(compressor, &compressor_range, ^() {
951 return compressor_size;
952 });
953
954 bool
osenvironment_is_diagnostics(void)955 osenvironment_is_diagnostics(void)
956 {
957 DTEntry chosen;
958 const char *osenvironment;
959 unsigned int size;
960 if (kSuccess == SecureDTLookupEntry(0, "/chosen", &chosen)) {
961 if (kSuccess == SecureDTGetProperty(chosen, "osenvironment", (void const **) &osenvironment, &size)) {
962 return strcmp(osenvironment, "diagnostics") == 0;
963 }
964 }
965 return false;
966 }
967
968 void
vm_compressor_init(void)969 vm_compressor_init(void)
970 {
971 thread_t thread;
972 #if RECORD_THE_COMPRESSED_DATA
973 vm_size_t c_compressed_record_sbuf_size = 0;
974 #endif /* RECORD_THE_COMPRESSED_DATA */
975
976 #if DEVELOPMENT || DEBUG || CONFIG_FREEZE
977 char bootarg_name[32];
978 #endif /* DEVELOPMENT || DEBUG || CONFIG_FREEZE */
979 __unused uint64_t early_boot_compressor_size = compressor_size;
980
981 #if CONFIG_JETSAM
982 if (memorystatus_swap_all_apps && osenvironment_is_diagnostics()) {
983 printf("osenvironment == \"diagnostics\". Disabling app swap.\n");
984 memorystatus_disable_swap();
985 }
986
987 if (memorystatus_swap_all_apps) {
988 /*
989 * App swap is disabled on devices with small NANDs.
990 * Now that we're no longer in early boot, we can get
991 * the NAND size and re-run vm_compressor_set_size.
992 */
993 int error = vm_swap_vol_get_capacity(SWAP_VOLUME_NAME, &vm_swap_volume_capacity);
994 #if DEVELOPMENT || DEBUG
995 if (error != 0) {
996 panic("vm_compressor_init: Unable to get swap volume capacity. error=%d\n", error);
997 }
998 #else
999 if (error != 0) {
1000 os_log_with_startup_serial(OS_LOG_DEFAULT, "vm_compressor_init: Unable to get swap volume capacity. error=%d\n", error);
1001 }
1002 #endif /* DEVELOPMENT || DEBUG */
1003 if (vm_swap_volume_capacity < swap_vol_min_capacity) {
1004 memorystatus_disable_swap();
1005 }
1006 /*
1007 * Resize the compressor and swap now that we know the capacity
1008 * of the swap volume.
1009 */
1010 vm_compressor_set_size();
1011 /*
1012 * We reserved a chunk of VA early in boot for the compressor submap.
1013 * We can't allocate more than that.
1014 */
1015 assert(compressor_size <= early_boot_compressor_size);
1016 }
1017 #endif /* CONFIG_JETSAM */
1018
1019 #if DEVELOPMENT || DEBUG
1020 if (PE_parse_boot_argn("-disable_cseg_write_protection", bootarg_name, sizeof(bootarg_name))) {
1021 write_protect_c_segs = FALSE;
1022 }
1023
1024 int vmcval = 1;
1025 #if defined(XNU_TARGET_OS_WATCH)
1026 vmcval = 0;
1027 #endif /* XNU_TARGET_OS_WATCH */
1028 PE_parse_boot_argn("vm_compressor_validation", &vmcval, sizeof(vmcval));
1029
1030 if (kern_feature_override(KF_COMPRSV_OVRD)) {
1031 vmcval = 0;
1032 }
1033
1034 if (vmcval == 0) {
1035 #if POPCOUNT_THE_COMPRESSED_DATA
1036 popcount_c_segs = FALSE;
1037 #endif
1038 #if CHECKSUM_THE_DATA || CHECKSUM_THE_COMPRESSED_DATA
1039 checksum_c_segs = FALSE;
1040 #endif
1041 #if VALIDATE_C_SEGMENTS
1042 validate_c_segs = FALSE;
1043 #endif
1044 write_protect_c_segs = FALSE;
1045 }
1046 #endif /* DEVELOPMENT || DEBUG */
1047
1048 #if CONFIG_FREEZE
1049 if (PE_parse_boot_argn("-disable_freezer_cseg_acct", bootarg_name, sizeof(bootarg_name))) {
1050 freezer_incore_cseg_acct = FALSE;
1051 }
1052 #endif /* CONFIG_FREEZE */
1053
1054 assert((C_SEGMENTS_PER_PAGE * sizeof(union c_segu)) == PAGE_SIZE);
1055
1056 #if !XNU_TARGET_OS_OSX
1057 vm_compressor_minorcompact_threshold_divisor = 20;
1058 vm_compressor_majorcompact_threshold_divisor = 30;
1059 vm_compressor_unthrottle_threshold_divisor = 40;
1060 vm_compressor_catchup_threshold_divisor = 60;
1061 #else /* !XNU_TARGET_OS_OSX */
1062 if (max_mem <= (3ULL * 1024ULL * 1024ULL * 1024ULL)) {
1063 vm_compressor_minorcompact_threshold_divisor = 11;
1064 vm_compressor_majorcompact_threshold_divisor = 13;
1065 vm_compressor_unthrottle_threshold_divisor = 20;
1066 vm_compressor_catchup_threshold_divisor = 35;
1067 } else {
1068 vm_compressor_minorcompact_threshold_divisor = 20;
1069 vm_compressor_majorcompact_threshold_divisor = 25;
1070 vm_compressor_unthrottle_threshold_divisor = 35;
1071 vm_compressor_catchup_threshold_divisor = 50;
1072 }
1073 #endif /* !XNU_TARGET_OS_OSX */
1074
1075 queue_init(&c_bad_list_head);
1076 queue_init(&c_age_list_head);
1077 queue_init(&c_minor_list_head);
1078 queue_init(&c_major_list_head);
1079 queue_init(&c_filling_list_head);
1080 queue_init(&c_early_swapout_list_head);
1081 queue_init(&c_regular_swapout_list_head);
1082 queue_init(&c_late_swapout_list_head);
1083 queue_init(&c_swapio_list_head);
1084 queue_init(&c_early_swappedin_list_head);
1085 queue_init(&c_regular_swappedin_list_head);
1086 queue_init(&c_late_swappedin_list_head);
1087 queue_init(&c_swappedout_list_head);
1088 queue_init(&c_swappedout_sparse_list_head);
1089
1090 c_free_segno_head = -1;
1091 c_segments_available = 0;
1092
1093 compressor_map = kmem_suballoc(kernel_map, &compressor_range.min_address,
1094 compressor_size, VM_MAP_CREATE_NEVER_FAULTS,
1095 VM_FLAGS_FIXED | VM_FLAGS_OVERWRITE, KMS_NOFAIL | KMS_PERMANENT,
1096 VM_KERN_MEMORY_COMPRESSOR).kmr_submap;
1097
1098 kmem_alloc(compressor_map, (vm_offset_t *)(&c_segments),
1099 (sizeof(union c_segu) * c_segments_limit),
1100 KMA_NOFAIL | KMA_KOBJECT | KMA_VAONLY | KMA_PERMANENT,
1101 VM_KERN_MEMORY_COMPRESSOR);
1102 kmem_alloc(compressor_map, &c_buffers, c_buffers_size,
1103 KMA_NOFAIL | KMA_COMPRESSOR | KMA_VAONLY | KMA_PERMANENT,
1104 VM_KERN_MEMORY_COMPRESSOR);
1105
1106 #if DEVELOPMENT || DEBUG
1107 if (hvg_is_hcall_available(HVG_HCALL_SET_COREDUMP_DATA)) {
1108 hvg_hcall_set_coredump_data();
1109 }
1110 #endif
1111
1112 /*
1113 * Pick a good size that will minimize fragmentation in zalloc
1114 * by minimizing the fragmentation in a 16k run.
1115 *
1116 * c_seg_slot_var_array_min_len is larger on 4k systems than 16k ones,
1117 * making the fragmentation in a 4k page terrible. Using 16k for all
1118 * systems matches zalloc() and will minimize fragmentation.
1119 */
1120 uint32_t c_segment_size = sizeof(struct c_segment) + (c_seg_slot_var_array_min_len * sizeof(struct c_slot));
1121 uint32_t cnt = (16 << 10) / c_segment_size;
1122 uint32_t frag = (16 << 10) % c_segment_size;
1123
1124 c_seg_fixed_array_len = c_seg_slot_var_array_min_len;
1125
1126 while (cnt * sizeof(struct c_slot) < frag) {
1127 c_segment_size += sizeof(struct c_slot);
1128 c_seg_fixed_array_len++;
1129 frag -= cnt * sizeof(struct c_slot);
1130 }
1131
1132 compressor_segment_zone = zone_create("compressor_segment",
1133 c_segment_size, ZC_PGZ_USE_GUARDS | ZC_NOENCRYPT | ZC_ZFREE_CLEARMEM);
1134
1135 c_segments_busy = FALSE;
1136
1137 c_segments_next_page = (caddr_t)c_segments;
1138 vm_compressor_algorithm_init();
1139
1140 {
1141 host_basic_info_data_t hinfo;
1142 mach_msg_type_number_t count = HOST_BASIC_INFO_COUNT;
1143 size_t bufsize;
1144 char *buf;
1145
1146 #define BSD_HOST 1
1147 host_info((host_t)BSD_HOST, HOST_BASIC_INFO, (host_info_t)&hinfo, &count);
1148
1149 compressor_cpus = hinfo.max_cpus;
1150
1151 bufsize = PAGE_SIZE;
1152 bufsize += compressor_cpus * vm_compressor_get_decode_scratch_size();
1153 /* For the KDP path */
1154 bufsize += vm_compressor_get_decode_scratch_size();
1155 #if CONFIG_FREEZE
1156 bufsize += vm_compressor_get_encode_scratch_size();
1157 #endif
1158 #if RECORD_THE_COMPRESSED_DATA
1159 bufsize += c_compressed_record_sbuf_size;
1160 #endif
1161
1162 kmem_alloc(kernel_map, (vm_offset_t *)&buf, bufsize,
1163 KMA_DATA | KMA_NOFAIL | KMA_KOBJECT | KMA_PERMANENT,
1164 VM_KERN_MEMORY_COMPRESSOR);
1165
1166 /*
1167 * kdp_compressor_decompressed_page must be page aligned because we access
1168 * it through the physical aperture by page number.
1169 */
1170 kdp_compressor_decompressed_page = buf;
1171 kdp_compressor_decompressed_page_paddr = kvtophys((vm_offset_t)kdp_compressor_decompressed_page);
1172 kdp_compressor_decompressed_page_ppnum = (ppnum_t) atop(kdp_compressor_decompressed_page_paddr);
1173 buf += PAGE_SIZE;
1174 bufsize -= PAGE_SIZE;
1175
1176 compressor_scratch_bufs = buf;
1177 buf += compressor_cpus * vm_compressor_get_decode_scratch_size();
1178 bufsize -= compressor_cpus * vm_compressor_get_decode_scratch_size();
1179
1180 kdp_compressor_scratch_buf = buf;
1181 buf += vm_compressor_get_decode_scratch_size();
1182 bufsize -= vm_compressor_get_decode_scratch_size();
1183
1184 #if CONFIG_FREEZE
1185 freezer_context_global.freezer_ctx_compressor_scratch_buf = buf;
1186 buf += vm_compressor_get_encode_scratch_size();
1187 bufsize -= vm_compressor_get_encode_scratch_size();
1188 #endif
1189
1190 #if RECORD_THE_COMPRESSED_DATA
1191 c_compressed_record_sbuf = buf;
1192 c_compressed_record_cptr = buf;
1193 c_compressed_record_ebuf = c_compressed_record_sbuf + c_compressed_record_sbuf_size;
1194 buf += c_compressed_record_sbuf_size;
1195 bufsize -= c_compressed_record_sbuf_size;
1196 #endif
1197 assert(bufsize == 0);
1198 }
1199
1200 if (kernel_thread_start_priority((thread_continue_t)vm_compressor_swap_trigger_thread, NULL,
1201 BASEPRI_VM, &thread) != KERN_SUCCESS) {
1202 panic("vm_compressor_swap_trigger_thread: create failed");
1203 }
1204 thread_deallocate(thread);
1205
1206 if (vm_pageout_internal_start() != KERN_SUCCESS) {
1207 panic("vm_compressor_init: Failed to start the internal pageout thread.");
1208 }
1209 if (VM_CONFIG_SWAP_IS_PRESENT) {
1210 vm_compressor_swap_init();
1211 }
1212
1213 if (VM_CONFIG_COMPRESSOR_IS_ACTIVE) {
1214 vm_compressor_is_active = 1;
1215 }
1216
1217 #if CONFIG_FREEZE
1218 memorystatus_freeze_enabled = TRUE;
1219 #endif /* CONFIG_FREEZE */
1220
1221 vm_compressor_available = 1;
1222
1223 vm_page_reactivate_all_throttled();
1224
1225 bzero(&vmcs_stats, sizeof(struct vm_compressor_swapper_stats));
1226 }
1227
1228
1229 #if VALIDATE_C_SEGMENTS
1230
1231 static void
c_seg_validate(c_segment_t c_seg,boolean_t must_be_compact)1232 c_seg_validate(c_segment_t c_seg, boolean_t must_be_compact)
1233 {
1234 uint16_t c_indx;
1235 int32_t bytes_used;
1236 uint32_t c_rounded_size;
1237 uint32_t c_size;
1238 c_slot_t cs;
1239
1240 if (__probable(validate_c_segs == FALSE)) {
1241 return;
1242 }
1243 if (c_seg->c_firstemptyslot < c_seg->c_nextslot) {
1244 c_indx = c_seg->c_firstemptyslot;
1245 cs = C_SEG_SLOT_FROM_INDEX(c_seg, c_indx);
1246
1247 if (cs == NULL) {
1248 panic("c_seg_validate: no slot backing c_firstemptyslot");
1249 }
1250
1251 if (cs->c_size) {
1252 panic("c_seg_validate: c_firstemptyslot has non-zero size (%d)", cs->c_size);
1253 }
1254 }
1255 bytes_used = 0;
1256
1257 for (c_indx = 0; c_indx < c_seg->c_nextslot; c_indx++) {
1258 cs = C_SEG_SLOT_FROM_INDEX(c_seg, c_indx);
1259
1260 c_size = UNPACK_C_SIZE(cs);
1261
1262 c_rounded_size = (c_size + C_SEG_OFFSET_ALIGNMENT_MASK) & ~C_SEG_OFFSET_ALIGNMENT_MASK;
1263
1264 bytes_used += c_rounded_size;
1265
1266 #if CHECKSUM_THE_COMPRESSED_DATA
1267 unsigned csvhash;
1268 if (c_size && cs->c_hash_compressed_data != (csvhash = vmc_hash((char *)&c_seg->c_store.c_buffer[cs->c_offset], c_size))) {
1269 addr64_t csvphys = kvtophys((vm_offset_t)&c_seg->c_store.c_buffer[cs->c_offset]);
1270 panic("Compressed data doesn't match original %p phys: 0x%llx %d %p %d %d 0x%x 0x%x", c_seg, csvphys, cs->c_offset, cs, c_indx, c_size, cs->c_hash_compressed_data, csvhash);
1271 }
1272 #endif
1273 #if POPCOUNT_THE_COMPRESSED_DATA
1274 unsigned csvpop;
1275 if (c_size) {
1276 uintptr_t csvaddr = (uintptr_t) &c_seg->c_store.c_buffer[cs->c_offset];
1277 if (cs->c_pop_cdata != (csvpop = vmc_pop(csvaddr, c_size))) {
1278 panic("Compressed data popcount doesn't match original, bit distance: %d %p (phys: %p) %p %p 0x%llx 0x%x 0x%x 0x%x", (csvpop - cs->c_pop_cdata), (void *)csvaddr, (void *) kvtophys(csvaddr), c_seg, cs, (uint64_t)cs->c_offset, c_size, csvpop, cs->c_pop_cdata);
1279 }
1280 }
1281 #endif
1282 }
1283
1284 if (bytes_used != c_seg->c_bytes_used) {
1285 panic("c_seg_validate: bytes_used mismatch - found %d, segment has %d", bytes_used, c_seg->c_bytes_used);
1286 }
1287
1288 if (c_seg->c_bytes_used > C_SEG_OFFSET_TO_BYTES((int32_t)c_seg->c_nextoffset)) {
1289 panic("c_seg_validate: c_bytes_used > c_nextoffset - c_nextoffset = %d, c_bytes_used = %d",
1290 (int32_t)C_SEG_OFFSET_TO_BYTES((int32_t)c_seg->c_nextoffset), c_seg->c_bytes_used);
1291 }
1292
1293 if (must_be_compact) {
1294 if (c_seg->c_bytes_used != C_SEG_OFFSET_TO_BYTES((int32_t)c_seg->c_nextoffset)) {
1295 panic("c_seg_validate: c_bytes_used doesn't match c_nextoffset - c_nextoffset = %d, c_bytes_used = %d",
1296 (int32_t)C_SEG_OFFSET_TO_BYTES((int32_t)c_seg->c_nextoffset), c_seg->c_bytes_used);
1297 }
1298 }
1299 }
1300
1301 #endif
1302
1303
1304 void
c_seg_need_delayed_compaction(c_segment_t c_seg,boolean_t c_list_lock_held)1305 c_seg_need_delayed_compaction(c_segment_t c_seg, boolean_t c_list_lock_held)
1306 {
1307 boolean_t clear_busy = FALSE;
1308
1309 if (c_list_lock_held == FALSE) {
1310 if (!lck_mtx_try_lock_spin_always(c_list_lock)) {
1311 C_SEG_BUSY(c_seg);
1312
1313 lck_mtx_unlock_always(&c_seg->c_lock);
1314 lck_mtx_lock_spin_always(c_list_lock);
1315 lck_mtx_lock_spin_always(&c_seg->c_lock);
1316
1317 clear_busy = TRUE;
1318 }
1319 }
1320 assert(c_seg->c_state != C_IS_FILLING);
1321
1322 if (!c_seg->c_on_minorcompact_q && !(C_SEG_IS_ON_DISK_OR_SOQ(c_seg)) && !c_seg->c_has_donated_pages) {
1323 queue_enter(&c_minor_list_head, c_seg, c_segment_t, c_list);
1324 c_seg->c_on_minorcompact_q = 1;
1325 c_minor_count++;
1326 }
1327 if (c_list_lock_held == FALSE) {
1328 lck_mtx_unlock_always(c_list_lock);
1329 }
1330
1331 if (clear_busy == TRUE) {
1332 C_SEG_WAKEUP_DONE(c_seg);
1333 }
1334 }
1335
1336
1337 unsigned int c_seg_moved_to_sparse_list = 0;
1338
1339 void
c_seg_move_to_sparse_list(c_segment_t c_seg)1340 c_seg_move_to_sparse_list(c_segment_t c_seg)
1341 {
1342 boolean_t clear_busy = FALSE;
1343
1344 if (!lck_mtx_try_lock_spin_always(c_list_lock)) {
1345 C_SEG_BUSY(c_seg);
1346
1347 lck_mtx_unlock_always(&c_seg->c_lock);
1348 lck_mtx_lock_spin_always(c_list_lock);
1349 lck_mtx_lock_spin_always(&c_seg->c_lock);
1350
1351 clear_busy = TRUE;
1352 }
1353 c_seg_switch_state(c_seg, C_ON_SWAPPEDOUTSPARSE_Q, FALSE);
1354
1355 c_seg_moved_to_sparse_list++;
1356
1357 lck_mtx_unlock_always(c_list_lock);
1358
1359 if (clear_busy == TRUE) {
1360 C_SEG_WAKEUP_DONE(c_seg);
1361 }
1362 }
1363
1364
1365 void
c_seg_insert_into_q(queue_head_t * qhead,c_segment_t c_seg)1366 c_seg_insert_into_q(queue_head_t *qhead, c_segment_t c_seg)
1367 {
1368 c_segment_t c_seg_next;
1369
1370 if (queue_empty(qhead)) {
1371 queue_enter(qhead, c_seg, c_segment_t, c_age_list);
1372 } else {
1373 c_seg_next = (c_segment_t)queue_first(qhead);
1374
1375 while (TRUE) {
1376 if (c_seg->c_generation_id < c_seg_next->c_generation_id) {
1377 queue_insert_before(qhead, c_seg, c_seg_next, c_segment_t, c_age_list);
1378 break;
1379 }
1380 c_seg_next = (c_segment_t) queue_next(&c_seg_next->c_age_list);
1381
1382 if (queue_end(qhead, (queue_entry_t) c_seg_next)) {
1383 queue_enter(qhead, c_seg, c_segment_t, c_age_list);
1384 break;
1385 }
1386 }
1387 }
1388 }
1389
1390
1391 int try_minor_compaction_failed = 0;
1392 int try_minor_compaction_succeeded = 0;
1393
1394 void
c_seg_try_minor_compaction_and_unlock(c_segment_t c_seg)1395 c_seg_try_minor_compaction_and_unlock(c_segment_t c_seg)
1396 {
1397 assert(c_seg->c_on_minorcompact_q);
1398 /*
1399 * c_seg is currently on the delayed minor compaction
1400 * queue and we have c_seg locked... if we can get the
1401 * c_list_lock w/o blocking (if we blocked we could deadlock
1402 * because the lock order is c_list_lock then c_seg's lock)
1403 * we'll pull it from the delayed list and free it directly
1404 */
1405 if (!lck_mtx_try_lock_spin_always(c_list_lock)) {
1406 /*
1407 * c_list_lock is held, we need to bail
1408 */
1409 try_minor_compaction_failed++;
1410
1411 lck_mtx_unlock_always(&c_seg->c_lock);
1412 } else {
1413 try_minor_compaction_succeeded++;
1414
1415 C_SEG_BUSY(c_seg);
1416 c_seg_do_minor_compaction_and_unlock(c_seg, TRUE, FALSE, FALSE);
1417 }
1418 }
1419
1420
1421 int
c_seg_do_minor_compaction_and_unlock(c_segment_t c_seg,boolean_t clear_busy,boolean_t need_list_lock,boolean_t disallow_page_replacement)1422 c_seg_do_minor_compaction_and_unlock(c_segment_t c_seg, boolean_t clear_busy, boolean_t need_list_lock, boolean_t disallow_page_replacement)
1423 {
1424 int c_seg_freed;
1425
1426 assert(c_seg->c_busy);
1427 assert(!C_SEG_IS_ON_DISK_OR_SOQ(c_seg));
1428
1429 /*
1430 * check for the case that can occur when we are not swapping
1431 * and this segment has been major compacted in the past
1432 * and moved to the majorcompact q to remove it from further
1433 * consideration... if the occupancy falls too low we need
1434 * to put it back on the age_q so that it will be considered
1435 * in the next major compaction sweep... if we don't do this
1436 * we will eventually run into the c_segments_limit
1437 */
1438 if (c_seg->c_state == C_ON_MAJORCOMPACT_Q && C_SEG_SHOULD_MAJORCOMPACT_NOW(c_seg)) {
1439 c_seg_switch_state(c_seg, C_ON_AGE_Q, FALSE);
1440 }
1441 if (!c_seg->c_on_minorcompact_q) {
1442 if (clear_busy == TRUE) {
1443 C_SEG_WAKEUP_DONE(c_seg);
1444 }
1445
1446 lck_mtx_unlock_always(&c_seg->c_lock);
1447
1448 return 0;
1449 }
1450 queue_remove(&c_minor_list_head, c_seg, c_segment_t, c_list);
1451 c_seg->c_on_minorcompact_q = 0;
1452 c_minor_count--;
1453
1454 lck_mtx_unlock_always(c_list_lock);
1455
1456 if (disallow_page_replacement == TRUE) {
1457 lck_mtx_unlock_always(&c_seg->c_lock);
1458
1459 PAGE_REPLACEMENT_DISALLOWED(TRUE);
1460
1461 lck_mtx_lock_spin_always(&c_seg->c_lock);
1462 }
1463 c_seg_freed = c_seg_minor_compaction_and_unlock(c_seg, clear_busy);
1464
1465 if (disallow_page_replacement == TRUE) {
1466 PAGE_REPLACEMENT_DISALLOWED(FALSE);
1467 }
1468
1469 if (need_list_lock == TRUE) {
1470 lck_mtx_lock_spin_always(c_list_lock);
1471 }
1472
1473 return c_seg_freed;
1474 }
1475
1476 void
kdp_compressor_busy_find_owner(event64_t wait_event,thread_waitinfo_t * waitinfo)1477 kdp_compressor_busy_find_owner(event64_t wait_event, thread_waitinfo_t *waitinfo)
1478 {
1479 c_segment_t c_seg = (c_segment_t) wait_event;
1480
1481 waitinfo->owner = thread_tid(c_seg->c_busy_for_thread);
1482 waitinfo->context = VM_KERNEL_UNSLIDE_OR_PERM(c_seg);
1483 }
1484
1485 #if DEVELOPMENT || DEBUG
1486 int
do_cseg_wedge_thread(void)1487 do_cseg_wedge_thread(void)
1488 {
1489 struct c_segment c_seg;
1490 c_seg.c_busy_for_thread = current_thread();
1491
1492 debug_cseg_wait_event = (event_t) &c_seg;
1493
1494 thread_set_pending_block_hint(current_thread(), kThreadWaitCompressor);
1495 assert_wait((event_t) (&c_seg), THREAD_INTERRUPTIBLE);
1496
1497 thread_block(THREAD_CONTINUE_NULL);
1498
1499 return 0;
1500 }
1501
1502 int
do_cseg_unwedge_thread(void)1503 do_cseg_unwedge_thread(void)
1504 {
1505 thread_wakeup(debug_cseg_wait_event);
1506 debug_cseg_wait_event = NULL;
1507
1508 return 0;
1509 }
1510 #endif /* DEVELOPMENT || DEBUG */
1511
1512 void
c_seg_wait_on_busy(c_segment_t c_seg)1513 c_seg_wait_on_busy(c_segment_t c_seg)
1514 {
1515 c_seg->c_wanted = 1;
1516
1517 thread_set_pending_block_hint(current_thread(), kThreadWaitCompressor);
1518 assert_wait((event_t) (c_seg), THREAD_UNINT);
1519
1520 lck_mtx_unlock_always(&c_seg->c_lock);
1521 thread_block(THREAD_CONTINUE_NULL);
1522 }
1523
1524 #if CONFIG_FREEZE
1525 /*
1526 * We don't have the task lock held while updating the task's
1527 * c_seg queues. We can do that because of the following restrictions:
1528 *
1529 * - SINGLE FREEZER CONTEXT:
1530 * We 'insert' c_segs into the task list on the task_freeze path.
1531 * There can only be one such freeze in progress and the task
1532 * isn't disappearing because we have the VM map lock held throughout
1533 * and we have a reference on the proc too.
1534 *
1535 * - SINGLE TASK DISOWN CONTEXT:
1536 * We 'disown' c_segs of a task ONLY from the task_terminate context. So
1537 * we don't need the task lock but we need the c_list_lock and the
1538 * compressor master lock (shared). We also hold the individual
1539 * c_seg locks (exclusive).
1540 *
1541 * If we either:
1542 * - can't get the c_seg lock on a try, then we start again because maybe
1543 * the c_seg is part of a compaction and might get freed. So we can't trust
1544 * that linkage and need to restart our queue traversal.
1545 * - OR, we run into a busy c_seg (say being swapped in or free-ing) we
1546 * drop all locks again and wait and restart our queue traversal.
1547 *
1548 * - The new_owner_task below is currently only the kernel or NULL.
1549 *
1550 */
1551 void
c_seg_update_task_owner(c_segment_t c_seg,task_t new_owner_task)1552 c_seg_update_task_owner(c_segment_t c_seg, task_t new_owner_task)
1553 {
1554 task_t owner_task = c_seg->c_task_owner;
1555 uint64_t uncompressed_bytes = ((c_seg->c_slots_used) * PAGE_SIZE_64);
1556
1557 LCK_MTX_ASSERT(c_list_lock, LCK_MTX_ASSERT_OWNED);
1558 LCK_MTX_ASSERT(&c_seg->c_lock, LCK_MTX_ASSERT_OWNED);
1559
1560 if (owner_task) {
1561 task_update_frozen_to_swap_acct(owner_task, uncompressed_bytes, DEBIT_FROM_SWAP);
1562 queue_remove(&owner_task->task_frozen_cseg_q, c_seg,
1563 c_segment_t, c_task_list_next_cseg);
1564 }
1565
1566 if (new_owner_task) {
1567 queue_enter(&new_owner_task->task_frozen_cseg_q, c_seg,
1568 c_segment_t, c_task_list_next_cseg);
1569 task_update_frozen_to_swap_acct(new_owner_task, uncompressed_bytes, CREDIT_TO_SWAP);
1570 }
1571
1572 c_seg->c_task_owner = new_owner_task;
1573 }
1574
1575 void
task_disown_frozen_csegs(task_t owner_task)1576 task_disown_frozen_csegs(task_t owner_task)
1577 {
1578 c_segment_t c_seg = NULL, next_cseg = NULL;
1579
1580 again:
1581 PAGE_REPLACEMENT_DISALLOWED(TRUE);
1582 lck_mtx_lock_spin_always(c_list_lock);
1583
1584 for (c_seg = (c_segment_t) queue_first(&owner_task->task_frozen_cseg_q);
1585 !queue_end(&owner_task->task_frozen_cseg_q, (queue_entry_t) c_seg);
1586 c_seg = next_cseg) {
1587 next_cseg = (c_segment_t) queue_next(&c_seg->c_task_list_next_cseg);
1588
1589 if (!lck_mtx_try_lock_spin_always(&c_seg->c_lock)) {
1590 lck_mtx_unlock(c_list_lock);
1591 PAGE_REPLACEMENT_DISALLOWED(FALSE);
1592 goto again;
1593 }
1594
1595 if (c_seg->c_busy) {
1596 lck_mtx_unlock(c_list_lock);
1597 PAGE_REPLACEMENT_DISALLOWED(FALSE);
1598
1599 c_seg_wait_on_busy(c_seg);
1600
1601 goto again;
1602 }
1603 assert(c_seg->c_task_owner == owner_task);
1604 c_seg_update_task_owner(c_seg, kernel_task);
1605 lck_mtx_unlock_always(&c_seg->c_lock);
1606 }
1607
1608 lck_mtx_unlock(c_list_lock);
1609 PAGE_REPLACEMENT_DISALLOWED(FALSE);
1610 }
1611 #endif /* CONFIG_FREEZE */
1612
1613 void
c_seg_switch_state(c_segment_t c_seg,int new_state,boolean_t insert_head)1614 c_seg_switch_state(c_segment_t c_seg, int new_state, boolean_t insert_head)
1615 {
1616 int old_state = c_seg->c_state;
1617 queue_head_t *donate_swapout_list_head, *donate_swappedin_list_head;
1618 uint32_t *donate_swapout_count, *donate_swappedin_count;
1619
1620 /*
1621 * On macOS the donate queue is swapped first ie the c_early_swapout queue.
1622 * On other swap-capable platforms, we want to swap those out last. So we
1623 * use the c_late_swapout queue.
1624 */
1625 #if XNU_TARGET_OS_OSX
1626 #if (DEVELOPMENT || DEBUG)
1627 if (new_state != C_IS_FILLING) {
1628 LCK_MTX_ASSERT(&c_seg->c_lock, LCK_MTX_ASSERT_OWNED);
1629 }
1630 LCK_MTX_ASSERT(c_list_lock, LCK_MTX_ASSERT_OWNED);
1631 #endif /* DEVELOPMENT || DEBUG */
1632
1633 donate_swapout_list_head = &c_early_swapout_list_head;
1634 donate_swapout_count = &c_early_swapout_count;
1635 donate_swappedin_list_head = &c_early_swappedin_list_head;
1636 donate_swappedin_count = &c_early_swappedin_count;
1637 #else /* XNU_TARGET_OS_OSX */
1638 donate_swapout_list_head = &c_late_swapout_list_head;
1639 donate_swapout_count = &c_late_swapout_count;
1640 donate_swappedin_list_head = &c_late_swappedin_list_head;
1641 donate_swappedin_count = &c_late_swappedin_count;
1642 #endif /* XNU_TARGET_OS_OSX */
1643
1644 switch (old_state) {
1645 case C_IS_EMPTY:
1646 assert(new_state == C_IS_FILLING || new_state == C_IS_FREE);
1647
1648 c_empty_count--;
1649 break;
1650
1651 case C_IS_FILLING:
1652 assert(new_state == C_ON_AGE_Q || new_state == C_ON_SWAPOUT_Q);
1653
1654 queue_remove(&c_filling_list_head, c_seg, c_segment_t, c_age_list);
1655 c_filling_count--;
1656 break;
1657
1658 case C_ON_AGE_Q:
1659 assert(new_state == C_ON_SWAPOUT_Q || new_state == C_ON_MAJORCOMPACT_Q ||
1660 new_state == C_IS_FREE);
1661
1662 queue_remove(&c_age_list_head, c_seg, c_segment_t, c_age_list);
1663 c_age_count--;
1664 break;
1665
1666 case C_ON_SWAPPEDIN_Q:
1667 if (c_seg->c_has_donated_pages) {
1668 assert(new_state == C_ON_SWAPOUT_Q || new_state == C_IS_FREE);
1669 queue_remove(donate_swappedin_list_head, c_seg, c_segment_t, c_age_list);
1670 *donate_swappedin_count -= 1;
1671 } else {
1672 assert(new_state == C_ON_AGE_Q || new_state == C_IS_FREE);
1673 #if CONFIG_FREEZE
1674 assert(c_seg->c_has_freezer_pages);
1675 queue_remove(&c_early_swappedin_list_head, c_seg, c_segment_t, c_age_list);
1676 c_early_swappedin_count--;
1677 #else /* CONFIG_FREEZE */
1678 queue_remove(&c_regular_swappedin_list_head, c_seg, c_segment_t, c_age_list);
1679 c_regular_swappedin_count--;
1680 #endif /* CONFIG_FREEZE */
1681 }
1682 break;
1683
1684 case C_ON_SWAPOUT_Q:
1685 assert(new_state == C_ON_AGE_Q || new_state == C_IS_FREE || new_state == C_IS_EMPTY || new_state == C_ON_SWAPIO_Q);
1686
1687 #if CONFIG_FREEZE
1688 if (c_seg->c_has_freezer_pages) {
1689 if (c_seg->c_task_owner && (new_state != C_ON_SWAPIO_Q)) {
1690 c_seg_update_task_owner(c_seg, NULL);
1691 }
1692 queue_remove(&c_early_swapout_list_head, c_seg, c_segment_t, c_age_list);
1693 c_early_swapout_count--;
1694 } else
1695 #endif /* CONFIG_FREEZE */
1696 {
1697 if (c_seg->c_has_donated_pages) {
1698 queue_remove(donate_swapout_list_head, c_seg, c_segment_t, c_age_list);
1699 *donate_swapout_count -= 1;
1700 } else {
1701 queue_remove(&c_regular_swapout_list_head, c_seg, c_segment_t, c_age_list);
1702 c_regular_swapout_count--;
1703 }
1704 }
1705
1706 if (new_state == C_ON_AGE_Q) {
1707 c_seg->c_has_donated_pages = 0;
1708 }
1709 thread_wakeup((event_t)&compaction_swapper_running);
1710 break;
1711
1712 case C_ON_SWAPIO_Q:
1713 #if CONFIG_FREEZE
1714 if (c_seg->c_has_freezer_pages) {
1715 assert(new_state == C_ON_SWAPPEDOUT_Q || new_state == C_ON_SWAPPEDOUTSPARSE_Q || new_state == C_ON_AGE_Q);
1716 } else
1717 #endif /* CONFIG_FREEZE */
1718 {
1719 if (c_seg->c_has_donated_pages) {
1720 assert(new_state == C_ON_SWAPPEDOUT_Q || new_state == C_ON_SWAPPEDOUTSPARSE_Q || new_state == C_ON_SWAPPEDIN_Q);
1721 } else {
1722 assert(new_state == C_ON_SWAPPEDOUT_Q || new_state == C_ON_SWAPPEDOUTSPARSE_Q || new_state == C_ON_AGE_Q);
1723 }
1724 }
1725
1726 queue_remove(&c_swapio_list_head, c_seg, c_segment_t, c_age_list);
1727 c_swapio_count--;
1728 break;
1729
1730 case C_ON_SWAPPEDOUT_Q:
1731 assert(new_state == C_ON_SWAPPEDIN_Q || new_state == C_ON_AGE_Q ||
1732 new_state == C_ON_SWAPPEDOUTSPARSE_Q ||
1733 new_state == C_ON_BAD_Q || new_state == C_IS_EMPTY || new_state == C_IS_FREE);
1734
1735 queue_remove(&c_swappedout_list_head, c_seg, c_segment_t, c_age_list);
1736 c_swappedout_count--;
1737 break;
1738
1739 case C_ON_SWAPPEDOUTSPARSE_Q:
1740 assert(new_state == C_ON_SWAPPEDIN_Q || new_state == C_ON_AGE_Q ||
1741 new_state == C_ON_BAD_Q || new_state == C_IS_EMPTY || new_state == C_IS_FREE);
1742
1743 queue_remove(&c_swappedout_sparse_list_head, c_seg, c_segment_t, c_age_list);
1744 c_swappedout_sparse_count--;
1745 break;
1746
1747 case C_ON_MAJORCOMPACT_Q:
1748 assert(new_state == C_ON_AGE_Q || new_state == C_IS_FREE);
1749
1750 queue_remove(&c_major_list_head, c_seg, c_segment_t, c_age_list);
1751 c_major_count--;
1752 break;
1753
1754 case C_ON_BAD_Q:
1755 assert(new_state == C_IS_FREE);
1756
1757 queue_remove(&c_bad_list_head, c_seg, c_segment_t, c_age_list);
1758 c_bad_count--;
1759 break;
1760
1761 default:
1762 panic("c_seg %p has bad c_state = %d", c_seg, old_state);
1763 }
1764
1765 switch (new_state) {
1766 case C_IS_FREE:
1767 assert(old_state != C_IS_FILLING);
1768
1769 break;
1770
1771 case C_IS_EMPTY:
1772 assert(old_state == C_ON_SWAPOUT_Q || old_state == C_ON_SWAPPEDOUT_Q || old_state == C_ON_SWAPPEDOUTSPARSE_Q);
1773
1774 c_empty_count++;
1775 break;
1776
1777 case C_IS_FILLING:
1778 assert(old_state == C_IS_EMPTY);
1779
1780 queue_enter(&c_filling_list_head, c_seg, c_segment_t, c_age_list);
1781 c_filling_count++;
1782 break;
1783
1784 case C_ON_AGE_Q:
1785 assert(old_state == C_IS_FILLING || old_state == C_ON_SWAPPEDIN_Q ||
1786 old_state == C_ON_SWAPOUT_Q || old_state == C_ON_SWAPIO_Q ||
1787 old_state == C_ON_MAJORCOMPACT_Q || old_state == C_ON_SWAPPEDOUT_Q || old_state == C_ON_SWAPPEDOUTSPARSE_Q);
1788
1789 assert(!c_seg->c_has_donated_pages);
1790 if (old_state == C_IS_FILLING) {
1791 queue_enter(&c_age_list_head, c_seg, c_segment_t, c_age_list);
1792 } else {
1793 if (!queue_empty(&c_age_list_head)) {
1794 c_segment_t c_first;
1795
1796 c_first = (c_segment_t)queue_first(&c_age_list_head);
1797 c_seg->c_creation_ts = c_first->c_creation_ts;
1798 }
1799 queue_enter_first(&c_age_list_head, c_seg, c_segment_t, c_age_list);
1800 }
1801 c_age_count++;
1802 break;
1803
1804 case C_ON_SWAPPEDIN_Q:
1805 {
1806 queue_head_t *list_head;
1807
1808 assert(old_state == C_ON_SWAPPEDOUT_Q || old_state == C_ON_SWAPPEDOUTSPARSE_Q || old_state == C_ON_SWAPIO_Q);
1809 if (c_seg->c_has_donated_pages) {
1810 /* Error in swapouts could happen while the c_seg is still on the swapio queue */
1811 list_head = donate_swappedin_list_head;
1812 *donate_swappedin_count += 1;
1813 } else {
1814 #if CONFIG_FREEZE
1815 assert(c_seg->c_has_freezer_pages);
1816 list_head = &c_early_swappedin_list_head;
1817 c_early_swappedin_count++;
1818 #else /* CONFIG_FREEZE */
1819 list_head = &c_regular_swappedin_list_head;
1820 c_regular_swappedin_count++;
1821 #endif /* CONFIG_FREEZE */
1822 }
1823
1824 if (insert_head == TRUE) {
1825 queue_enter_first(list_head, c_seg, c_segment_t, c_age_list);
1826 } else {
1827 queue_enter(list_head, c_seg, c_segment_t, c_age_list);
1828 }
1829 break;
1830 }
1831
1832 case C_ON_SWAPOUT_Q:
1833 {
1834 queue_head_t *list_head;
1835
1836 #if CONFIG_FREEZE
1837 /*
1838 * A segment with both identities of frozen + donated pages
1839 * will be put on early swapout Q ie the frozen identity wins.
1840 * This is because when both identities are set, the donation bit
1841 * is added on after in the c_current_seg_filled path for accounting
1842 * purposes.
1843 */
1844 if (c_seg->c_has_freezer_pages) {
1845 assert(old_state == C_ON_AGE_Q || old_state == C_IS_FILLING);
1846 list_head = &c_early_swapout_list_head;
1847 c_early_swapout_count++;
1848 } else
1849 #endif
1850 {
1851 if (c_seg->c_has_donated_pages) {
1852 assert(old_state == C_ON_SWAPPEDIN_Q || old_state == C_IS_FILLING);
1853 list_head = donate_swapout_list_head;
1854 *donate_swapout_count += 1;
1855 } else {
1856 assert(old_state == C_ON_AGE_Q || old_state == C_IS_FILLING);
1857 list_head = &c_regular_swapout_list_head;
1858 c_regular_swapout_count++;
1859 }
1860 }
1861
1862 if (insert_head == TRUE) {
1863 queue_enter_first(list_head, c_seg, c_segment_t, c_age_list);
1864 } else {
1865 queue_enter(list_head, c_seg, c_segment_t, c_age_list);
1866 }
1867 break;
1868 }
1869
1870 case C_ON_SWAPIO_Q:
1871 assert(old_state == C_ON_SWAPOUT_Q);
1872
1873 if (insert_head == TRUE) {
1874 queue_enter_first(&c_swapio_list_head, c_seg, c_segment_t, c_age_list);
1875 } else {
1876 queue_enter(&c_swapio_list_head, c_seg, c_segment_t, c_age_list);
1877 }
1878 c_swapio_count++;
1879 break;
1880
1881 case C_ON_SWAPPEDOUT_Q:
1882 assert(old_state == C_ON_SWAPIO_Q);
1883
1884 if (insert_head == TRUE) {
1885 queue_enter_first(&c_swappedout_list_head, c_seg, c_segment_t, c_age_list);
1886 } else {
1887 queue_enter(&c_swappedout_list_head, c_seg, c_segment_t, c_age_list);
1888 }
1889 c_swappedout_count++;
1890 break;
1891
1892 case C_ON_SWAPPEDOUTSPARSE_Q:
1893 assert(old_state == C_ON_SWAPIO_Q || old_state == C_ON_SWAPPEDOUT_Q);
1894
1895 if (insert_head == TRUE) {
1896 queue_enter_first(&c_swappedout_sparse_list_head, c_seg, c_segment_t, c_age_list);
1897 } else {
1898 queue_enter(&c_swappedout_sparse_list_head, c_seg, c_segment_t, c_age_list);
1899 }
1900
1901 c_swappedout_sparse_count++;
1902 break;
1903
1904 case C_ON_MAJORCOMPACT_Q:
1905 assert(old_state == C_ON_AGE_Q);
1906 assert(!c_seg->c_has_donated_pages);
1907
1908 if (insert_head == TRUE) {
1909 queue_enter_first(&c_major_list_head, c_seg, c_segment_t, c_age_list);
1910 } else {
1911 queue_enter(&c_major_list_head, c_seg, c_segment_t, c_age_list);
1912 }
1913 c_major_count++;
1914 break;
1915
1916 case C_ON_BAD_Q:
1917 assert(old_state == C_ON_SWAPPEDOUT_Q || old_state == C_ON_SWAPPEDOUTSPARSE_Q);
1918
1919 if (insert_head == TRUE) {
1920 queue_enter_first(&c_bad_list_head, c_seg, c_segment_t, c_age_list);
1921 } else {
1922 queue_enter(&c_bad_list_head, c_seg, c_segment_t, c_age_list);
1923 }
1924 c_bad_count++;
1925 break;
1926
1927 default:
1928 panic("c_seg %p requesting bad c_state = %d", c_seg, new_state);
1929 }
1930 c_seg->c_state = new_state;
1931 }
1932
1933
1934
1935 void
c_seg_free(c_segment_t c_seg)1936 c_seg_free(c_segment_t c_seg)
1937 {
1938 assert(c_seg->c_busy);
1939
1940 lck_mtx_unlock_always(&c_seg->c_lock);
1941 lck_mtx_lock_spin_always(c_list_lock);
1942 lck_mtx_lock_spin_always(&c_seg->c_lock);
1943
1944 c_seg_free_locked(c_seg);
1945 }
1946
1947
1948 void
c_seg_free_locked(c_segment_t c_seg)1949 c_seg_free_locked(c_segment_t c_seg)
1950 {
1951 int segno;
1952 int pages_populated = 0;
1953 int32_t *c_buffer = NULL;
1954 uint64_t c_swap_handle = 0;
1955
1956 assert(c_seg->c_busy);
1957 assert(c_seg->c_slots_used == 0);
1958 assert(!c_seg->c_on_minorcompact_q);
1959 assert(!c_seg->c_busy_swapping);
1960
1961 if (c_seg->c_overage_swap == TRUE) {
1962 c_overage_swapped_count--;
1963 c_seg->c_overage_swap = FALSE;
1964 }
1965 if (!(C_SEG_IS_ONDISK(c_seg))) {
1966 c_buffer = c_seg->c_store.c_buffer;
1967 } else {
1968 c_swap_handle = c_seg->c_store.c_swap_handle;
1969 }
1970
1971 c_seg_switch_state(c_seg, C_IS_FREE, FALSE);
1972
1973 if (c_buffer) {
1974 pages_populated = (round_page_32(C_SEG_OFFSET_TO_BYTES(c_seg->c_populated_offset))) / PAGE_SIZE;
1975 c_seg->c_store.c_buffer = NULL;
1976 } else {
1977 #if CONFIG_FREEZE
1978 c_seg_update_task_owner(c_seg, NULL);
1979 #endif /* CONFIG_FREEZE */
1980
1981 c_seg->c_store.c_swap_handle = (uint64_t)-1;
1982 }
1983
1984 lck_mtx_unlock_always(&c_seg->c_lock);
1985
1986 lck_mtx_unlock_always(c_list_lock);
1987
1988 if (c_buffer) {
1989 if (pages_populated) {
1990 kernel_memory_depopulate((vm_offset_t)c_buffer,
1991 ptoa(pages_populated), KMA_COMPRESSOR,
1992 VM_KERN_MEMORY_COMPRESSOR);
1993 }
1994 } else if (c_swap_handle) {
1995 /*
1996 * Free swap space on disk.
1997 */
1998 vm_swap_free(c_swap_handle);
1999 }
2000 lck_mtx_lock_spin_always(&c_seg->c_lock);
2001 /*
2002 * c_seg must remain busy until
2003 * after the call to vm_swap_free
2004 */
2005 C_SEG_WAKEUP_DONE(c_seg);
2006 lck_mtx_unlock_always(&c_seg->c_lock);
2007
2008 segno = c_seg->c_mysegno;
2009
2010 lck_mtx_lock_spin_always(c_list_lock);
2011 /*
2012 * because the c_buffer is now associated with the segno,
2013 * we can't put the segno back on the free list until
2014 * after we have depopulated the c_buffer range, or
2015 * we run the risk of depopulating a range that is
2016 * now being used in one of the compressor heads
2017 */
2018 c_segments[segno].c_segno = c_free_segno_head;
2019 c_free_segno_head = segno;
2020 c_segment_count--;
2021
2022 lck_mtx_unlock_always(c_list_lock);
2023
2024 lck_mtx_destroy(&c_seg->c_lock, &vm_compressor_lck_grp);
2025
2026 if (c_seg->c_slot_var_array_len) {
2027 kfree_data(c_seg->c_slot_var_array,
2028 sizeof(struct c_slot) * c_seg->c_slot_var_array_len);
2029 }
2030
2031 zfree(compressor_segment_zone, c_seg);
2032 }
2033
2034 #if DEVELOPMENT || DEBUG
2035 int c_seg_trim_page_count = 0;
2036 #endif
2037
2038 void
c_seg_trim_tail(c_segment_t c_seg)2039 c_seg_trim_tail(c_segment_t c_seg)
2040 {
2041 c_slot_t cs;
2042 uint32_t c_size;
2043 uint32_t c_offset;
2044 uint32_t c_rounded_size;
2045 uint16_t current_nextslot;
2046 uint32_t current_populated_offset;
2047
2048 if (c_seg->c_bytes_used == 0) {
2049 return;
2050 }
2051 current_nextslot = c_seg->c_nextslot;
2052 current_populated_offset = c_seg->c_populated_offset;
2053
2054 while (c_seg->c_nextslot) {
2055 cs = C_SEG_SLOT_FROM_INDEX(c_seg, (c_seg->c_nextslot - 1));
2056
2057 c_size = UNPACK_C_SIZE(cs);
2058
2059 if (c_size) {
2060 if (current_nextslot != c_seg->c_nextslot) {
2061 c_rounded_size = (c_size + C_SEG_OFFSET_ALIGNMENT_MASK) & ~C_SEG_OFFSET_ALIGNMENT_MASK;
2062 c_offset = cs->c_offset + C_SEG_BYTES_TO_OFFSET(c_rounded_size);
2063
2064 c_seg->c_nextoffset = c_offset;
2065 c_seg->c_populated_offset = (c_offset + (C_SEG_BYTES_TO_OFFSET(PAGE_SIZE) - 1)) &
2066 ~(C_SEG_BYTES_TO_OFFSET(PAGE_SIZE) - 1);
2067
2068 if (c_seg->c_firstemptyslot > c_seg->c_nextslot) {
2069 c_seg->c_firstemptyslot = c_seg->c_nextslot;
2070 }
2071 #if DEVELOPMENT || DEBUG
2072 c_seg_trim_page_count += ((round_page_32(C_SEG_OFFSET_TO_BYTES(current_populated_offset)) -
2073 round_page_32(C_SEG_OFFSET_TO_BYTES(c_seg->c_populated_offset))) /
2074 PAGE_SIZE);
2075 #endif
2076 }
2077 break;
2078 }
2079 c_seg->c_nextslot--;
2080 }
2081 assert(c_seg->c_nextslot);
2082 }
2083
2084
2085 int
c_seg_minor_compaction_and_unlock(c_segment_t c_seg,boolean_t clear_busy)2086 c_seg_minor_compaction_and_unlock(c_segment_t c_seg, boolean_t clear_busy)
2087 {
2088 c_slot_mapping_t slot_ptr;
2089 uint32_t c_offset = 0;
2090 uint32_t old_populated_offset;
2091 uint32_t c_rounded_size;
2092 uint32_t c_size;
2093 uint16_t c_indx = 0;
2094 int i;
2095 c_slot_t c_dst;
2096 c_slot_t c_src;
2097
2098 assert(c_seg->c_busy);
2099
2100 #if VALIDATE_C_SEGMENTS
2101 c_seg_validate(c_seg, FALSE);
2102 #endif
2103 if (c_seg->c_bytes_used == 0) {
2104 c_seg_free(c_seg);
2105 return 1;
2106 }
2107 lck_mtx_unlock_always(&c_seg->c_lock);
2108
2109 if (c_seg->c_firstemptyslot >= c_seg->c_nextslot || C_SEG_UNUSED_BYTES(c_seg) < PAGE_SIZE) {
2110 goto done;
2111 }
2112
2113 /* TODO: assert first emptyslot's c_size is actually 0 */
2114
2115 #if DEVELOPMENT || DEBUG
2116 C_SEG_MAKE_WRITEABLE(c_seg);
2117 #endif
2118
2119 #if VALIDATE_C_SEGMENTS
2120 c_seg->c_was_minor_compacted++;
2121 #endif
2122 c_indx = c_seg->c_firstemptyslot;
2123 c_dst = C_SEG_SLOT_FROM_INDEX(c_seg, c_indx);
2124
2125 old_populated_offset = c_seg->c_populated_offset;
2126 c_offset = c_dst->c_offset;
2127
2128 for (i = c_indx + 1; i < c_seg->c_nextslot && c_offset < c_seg->c_nextoffset; i++) {
2129 c_src = C_SEG_SLOT_FROM_INDEX(c_seg, i);
2130
2131 c_size = UNPACK_C_SIZE(c_src);
2132
2133 if (c_size == 0) {
2134 continue;
2135 }
2136
2137 c_rounded_size = (c_size + C_SEG_OFFSET_ALIGNMENT_MASK) & ~C_SEG_OFFSET_ALIGNMENT_MASK;
2138 /* N.B.: This memcpy may be an overlapping copy */
2139 memcpy(&c_seg->c_store.c_buffer[c_offset], &c_seg->c_store.c_buffer[c_src->c_offset], c_rounded_size);
2140
2141 cslot_copy(c_dst, c_src);
2142 c_dst->c_offset = c_offset;
2143
2144 slot_ptr = C_SLOT_UNPACK_PTR(c_dst);
2145 slot_ptr->s_cindx = c_indx;
2146
2147 c_offset += C_SEG_BYTES_TO_OFFSET(c_rounded_size);
2148 PACK_C_SIZE(c_src, 0);
2149 c_indx++;
2150
2151 c_dst = C_SEG_SLOT_FROM_INDEX(c_seg, c_indx);
2152 }
2153 c_seg->c_firstemptyslot = c_indx;
2154 c_seg->c_nextslot = c_indx;
2155 c_seg->c_nextoffset = c_offset;
2156 c_seg->c_populated_offset = (c_offset + (C_SEG_BYTES_TO_OFFSET(PAGE_SIZE) - 1)) & ~(C_SEG_BYTES_TO_OFFSET(PAGE_SIZE) - 1);
2157 c_seg->c_bytes_unused = 0;
2158
2159 #if VALIDATE_C_SEGMENTS
2160 c_seg_validate(c_seg, TRUE);
2161 #endif
2162 if (old_populated_offset > c_seg->c_populated_offset) {
2163 uint32_t gc_size;
2164 int32_t *gc_ptr;
2165
2166 gc_size = C_SEG_OFFSET_TO_BYTES(old_populated_offset - c_seg->c_populated_offset);
2167 gc_ptr = &c_seg->c_store.c_buffer[c_seg->c_populated_offset];
2168
2169 kernel_memory_depopulate((vm_offset_t)gc_ptr, gc_size,
2170 KMA_COMPRESSOR, VM_KERN_MEMORY_COMPRESSOR);
2171 }
2172
2173 #if DEVELOPMENT || DEBUG
2174 C_SEG_WRITE_PROTECT(c_seg);
2175 #endif
2176
2177 done:
2178 if (clear_busy == TRUE) {
2179 lck_mtx_lock_spin_always(&c_seg->c_lock);
2180 C_SEG_WAKEUP_DONE(c_seg);
2181 lck_mtx_unlock_always(&c_seg->c_lock);
2182 }
2183 return 0;
2184 }
2185
2186
2187 static void
c_seg_alloc_nextslot(c_segment_t c_seg)2188 c_seg_alloc_nextslot(c_segment_t c_seg)
2189 {
2190 struct c_slot *old_slot_array = NULL;
2191 struct c_slot *new_slot_array = NULL;
2192 int newlen;
2193 int oldlen;
2194
2195 if (c_seg->c_nextslot < c_seg_fixed_array_len) {
2196 return;
2197 }
2198
2199 if ((c_seg->c_nextslot - c_seg_fixed_array_len) >= c_seg->c_slot_var_array_len) {
2200 oldlen = c_seg->c_slot_var_array_len;
2201 old_slot_array = c_seg->c_slot_var_array;
2202
2203 if (oldlen == 0) {
2204 newlen = c_seg_slot_var_array_min_len;
2205 } else {
2206 newlen = oldlen * 2;
2207 }
2208
2209 new_slot_array = kalloc_data(sizeof(struct c_slot) * newlen,
2210 Z_WAITOK);
2211
2212 lck_mtx_lock_spin_always(&c_seg->c_lock);
2213
2214 if (old_slot_array) {
2215 memcpy(new_slot_array, old_slot_array,
2216 sizeof(struct c_slot) * oldlen);
2217 }
2218
2219 c_seg->c_slot_var_array_len = newlen;
2220 c_seg->c_slot_var_array = new_slot_array;
2221
2222 lck_mtx_unlock_always(&c_seg->c_lock);
2223
2224 kfree_data(old_slot_array, sizeof(struct c_slot) * oldlen);
2225 }
2226 }
2227
2228
2229 #define C_SEG_MAJOR_COMPACT_STATS_MAX (30)
2230
2231 struct {
2232 uint64_t asked_permission;
2233 uint64_t compactions;
2234 uint64_t moved_slots;
2235 uint64_t moved_bytes;
2236 uint64_t wasted_space_in_swapouts;
2237 uint64_t count_of_swapouts;
2238 uint64_t count_of_freed_segs;
2239 uint64_t bailed_compactions;
2240 uint64_t bytes_freed_rate_us;
2241 } c_seg_major_compact_stats[C_SEG_MAJOR_COMPACT_STATS_MAX];
2242
2243 int c_seg_major_compact_stats_now = 0;
2244
2245
2246 #define C_MAJOR_COMPACTION_SIZE_APPROPRIATE ((c_seg_bufsize * 90) / 100)
2247
2248
2249 boolean_t
c_seg_major_compact_ok(c_segment_t c_seg_dst,c_segment_t c_seg_src)2250 c_seg_major_compact_ok(
2251 c_segment_t c_seg_dst,
2252 c_segment_t c_seg_src)
2253 {
2254 c_seg_major_compact_stats[c_seg_major_compact_stats_now].asked_permission++;
2255
2256 if (c_seg_src->c_bytes_used >= C_MAJOR_COMPACTION_SIZE_APPROPRIATE &&
2257 c_seg_dst->c_bytes_used >= C_MAJOR_COMPACTION_SIZE_APPROPRIATE) {
2258 return FALSE;
2259 }
2260
2261 if (c_seg_dst->c_nextoffset >= c_seg_off_limit || c_seg_dst->c_nextslot >= C_SLOT_MAX_INDEX) {
2262 /*
2263 * destination segment is full... can't compact
2264 */
2265 return FALSE;
2266 }
2267
2268 return TRUE;
2269 }
2270
2271
2272 boolean_t
c_seg_major_compact(c_segment_t c_seg_dst,c_segment_t c_seg_src)2273 c_seg_major_compact(
2274 c_segment_t c_seg_dst,
2275 c_segment_t c_seg_src)
2276 {
2277 c_slot_mapping_t slot_ptr;
2278 uint32_t c_rounded_size;
2279 uint32_t c_size;
2280 uint16_t dst_slot;
2281 int i;
2282 c_slot_t c_dst;
2283 c_slot_t c_src;
2284 boolean_t keep_compacting = TRUE;
2285
2286 /*
2287 * segments are not locked but they are both marked c_busy
2288 * which keeps c_decompress from working on them...
2289 * we can safely allocate new pages, move compressed data
2290 * from c_seg_src to c_seg_dst and update both c_segment's
2291 * state w/o holding the master lock
2292 */
2293 #if DEVELOPMENT || DEBUG
2294 C_SEG_MAKE_WRITEABLE(c_seg_dst);
2295 #endif
2296
2297 #if VALIDATE_C_SEGMENTS
2298 c_seg_dst->c_was_major_compacted++;
2299 c_seg_src->c_was_major_donor++;
2300 #endif
2301 assertf(c_seg_dst->c_has_donated_pages == c_seg_src->c_has_donated_pages, "Mismatched donation status Dst: %p, Src: %p\n", c_seg_dst, c_seg_src);
2302 c_seg_major_compact_stats[c_seg_major_compact_stats_now].compactions++;
2303
2304 dst_slot = c_seg_dst->c_nextslot;
2305
2306 for (i = 0; i < c_seg_src->c_nextslot; i++) {
2307 c_src = C_SEG_SLOT_FROM_INDEX(c_seg_src, i);
2308
2309 c_size = UNPACK_C_SIZE(c_src);
2310
2311 if (c_size == 0) {
2312 /* BATCH: move what we have so far; */
2313 continue;
2314 }
2315
2316 if (C_SEG_OFFSET_TO_BYTES(c_seg_dst->c_populated_offset - c_seg_dst->c_nextoffset) < (unsigned) c_size) {
2317 int size_to_populate;
2318
2319 /* doesn't fit */
2320 size_to_populate = c_seg_bufsize - C_SEG_OFFSET_TO_BYTES(c_seg_dst->c_populated_offset);
2321
2322 if (size_to_populate == 0) {
2323 /* can't fit */
2324 keep_compacting = FALSE;
2325 break;
2326 }
2327 if (size_to_populate > C_SEG_MAX_POPULATE_SIZE) {
2328 size_to_populate = C_SEG_MAX_POPULATE_SIZE;
2329 }
2330
2331 kernel_memory_populate(
2332 (vm_offset_t) &c_seg_dst->c_store.c_buffer[c_seg_dst->c_populated_offset],
2333 size_to_populate,
2334 KMA_NOFAIL | KMA_COMPRESSOR,
2335 VM_KERN_MEMORY_COMPRESSOR);
2336
2337 c_seg_dst->c_populated_offset += C_SEG_BYTES_TO_OFFSET(size_to_populate);
2338 assert(C_SEG_OFFSET_TO_BYTES(c_seg_dst->c_populated_offset) <= c_seg_bufsize);
2339 }
2340 c_seg_alloc_nextslot(c_seg_dst);
2341
2342 c_dst = C_SEG_SLOT_FROM_INDEX(c_seg_dst, c_seg_dst->c_nextslot);
2343
2344 memcpy(&c_seg_dst->c_store.c_buffer[c_seg_dst->c_nextoffset], &c_seg_src->c_store.c_buffer[c_src->c_offset], c_size);
2345
2346 c_rounded_size = (c_size + C_SEG_OFFSET_ALIGNMENT_MASK) & ~C_SEG_OFFSET_ALIGNMENT_MASK;
2347
2348 c_seg_major_compact_stats[c_seg_major_compact_stats_now].moved_slots++;
2349 c_seg_major_compact_stats[c_seg_major_compact_stats_now].moved_bytes += c_size;
2350
2351 cslot_copy(c_dst, c_src);
2352 c_dst->c_offset = c_seg_dst->c_nextoffset;
2353
2354 if (c_seg_dst->c_firstemptyslot == c_seg_dst->c_nextslot) {
2355 c_seg_dst->c_firstemptyslot++;
2356 }
2357 c_seg_dst->c_slots_used++;
2358 c_seg_dst->c_nextslot++;
2359 c_seg_dst->c_bytes_used += c_rounded_size;
2360 c_seg_dst->c_nextoffset += C_SEG_BYTES_TO_OFFSET(c_rounded_size);
2361
2362 PACK_C_SIZE(c_src, 0);
2363
2364 c_seg_src->c_bytes_used -= c_rounded_size;
2365 c_seg_src->c_bytes_unused += c_rounded_size;
2366 c_seg_src->c_firstemptyslot = 0;
2367
2368 assert(c_seg_src->c_slots_used);
2369 c_seg_src->c_slots_used--;
2370
2371 if (!c_seg_src->c_swappedin) {
2372 /* Pessimistically lose swappedin status when non-swappedin pages are added. */
2373 c_seg_dst->c_swappedin = false;
2374 }
2375
2376 if (c_seg_dst->c_nextoffset >= c_seg_off_limit || c_seg_dst->c_nextslot >= C_SLOT_MAX_INDEX) {
2377 /* dest segment is now full */
2378 keep_compacting = FALSE;
2379 break;
2380 }
2381 }
2382 #if DEVELOPMENT || DEBUG
2383 C_SEG_WRITE_PROTECT(c_seg_dst);
2384 #endif
2385 if (dst_slot < c_seg_dst->c_nextslot) {
2386 PAGE_REPLACEMENT_ALLOWED(TRUE);
2387 /*
2388 * we've now locked out c_decompress from
2389 * converting the slot passed into it into
2390 * a c_segment_t which allows us to use
2391 * the backptr to change which c_segment and
2392 * index the slot points to
2393 */
2394 while (dst_slot < c_seg_dst->c_nextslot) {
2395 c_dst = C_SEG_SLOT_FROM_INDEX(c_seg_dst, dst_slot);
2396
2397 slot_ptr = C_SLOT_UNPACK_PTR(c_dst);
2398 /* <csegno=0,indx=0> would mean "empty slot", so use csegno+1 */
2399 slot_ptr->s_cseg = c_seg_dst->c_mysegno + 1;
2400 slot_ptr->s_cindx = dst_slot++;
2401 }
2402 PAGE_REPLACEMENT_ALLOWED(FALSE);
2403 }
2404 return keep_compacting;
2405 }
2406
2407
2408 uint64_t
vm_compressor_compute_elapsed_msecs(clock_sec_t end_sec,clock_nsec_t end_nsec,clock_sec_t start_sec,clock_nsec_t start_nsec)2409 vm_compressor_compute_elapsed_msecs(clock_sec_t end_sec, clock_nsec_t end_nsec, clock_sec_t start_sec, clock_nsec_t start_nsec)
2410 {
2411 uint64_t end_msecs;
2412 uint64_t start_msecs;
2413
2414 end_msecs = (end_sec * 1000) + end_nsec / 1000000;
2415 start_msecs = (start_sec * 1000) + start_nsec / 1000000;
2416
2417 return end_msecs - start_msecs;
2418 }
2419
2420
2421
2422 uint32_t compressor_eval_period_in_msecs = 250;
2423 uint32_t compressor_sample_min_in_msecs = 500;
2424 uint32_t compressor_sample_max_in_msecs = 10000;
2425 uint32_t compressor_thrashing_threshold_per_10msecs = 50;
2426 uint32_t compressor_thrashing_min_per_10msecs = 20;
2427
2428 /* When true, reset sample data next chance we get. */
2429 static boolean_t compressor_need_sample_reset = FALSE;
2430
2431
2432 void
compute_swapout_target_age(void)2433 compute_swapout_target_age(void)
2434 {
2435 clock_sec_t cur_ts_sec;
2436 clock_nsec_t cur_ts_nsec;
2437 uint32_t min_operations_needed_in_this_sample;
2438 uint64_t elapsed_msecs_in_eval;
2439 uint64_t elapsed_msecs_in_sample;
2440 boolean_t need_eval_reset = FALSE;
2441
2442 clock_get_system_nanotime(&cur_ts_sec, &cur_ts_nsec);
2443
2444 elapsed_msecs_in_sample = vm_compressor_compute_elapsed_msecs(cur_ts_sec, cur_ts_nsec, start_of_sample_period_sec, start_of_sample_period_nsec);
2445
2446 if (compressor_need_sample_reset ||
2447 elapsed_msecs_in_sample >= compressor_sample_max_in_msecs) {
2448 compressor_need_sample_reset = TRUE;
2449 need_eval_reset = TRUE;
2450 goto done;
2451 }
2452 elapsed_msecs_in_eval = vm_compressor_compute_elapsed_msecs(cur_ts_sec, cur_ts_nsec, start_of_eval_period_sec, start_of_eval_period_nsec);
2453
2454 if (elapsed_msecs_in_eval < compressor_eval_period_in_msecs) {
2455 goto done;
2456 }
2457 need_eval_reset = TRUE;
2458
2459 KERNEL_DEBUG(0xe0400020 | DBG_FUNC_START, elapsed_msecs_in_eval, sample_period_compression_count, sample_period_decompression_count, 0, 0);
2460
2461 min_operations_needed_in_this_sample = (compressor_thrashing_min_per_10msecs * (uint32_t)elapsed_msecs_in_eval) / 10;
2462
2463 if ((sample_period_compression_count - last_eval_compression_count) < min_operations_needed_in_this_sample ||
2464 (sample_period_decompression_count - last_eval_decompression_count) < min_operations_needed_in_this_sample) {
2465 KERNEL_DEBUG(0xe0400020 | DBG_FUNC_END, sample_period_compression_count - last_eval_compression_count,
2466 sample_period_decompression_count - last_eval_decompression_count, 0, 1, 0);
2467
2468 swapout_target_age = 0;
2469
2470 compressor_need_sample_reset = TRUE;
2471 need_eval_reset = TRUE;
2472 goto done;
2473 }
2474 last_eval_compression_count = sample_period_compression_count;
2475 last_eval_decompression_count = sample_period_decompression_count;
2476
2477 if (elapsed_msecs_in_sample < compressor_sample_min_in_msecs) {
2478 KERNEL_DEBUG(0xe0400020 | DBG_FUNC_END, swapout_target_age, 0, 0, 5, 0);
2479 goto done;
2480 }
2481 if (sample_period_decompression_count > ((compressor_thrashing_threshold_per_10msecs * elapsed_msecs_in_sample) / 10)) {
2482 uint64_t running_total;
2483 uint64_t working_target;
2484 uint64_t aging_target;
2485 uint32_t oldest_age_of_csegs_sampled = 0;
2486 uint64_t working_set_approximation = 0;
2487
2488 swapout_target_age = 0;
2489
2490 working_target = (sample_period_decompression_count / 100) * 95; /* 95 percent */
2491 aging_target = (sample_period_decompression_count / 100) * 1; /* 1 percent */
2492 running_total = 0;
2493
2494 for (oldest_age_of_csegs_sampled = 0; oldest_age_of_csegs_sampled < DECOMPRESSION_SAMPLE_MAX_AGE; oldest_age_of_csegs_sampled++) {
2495 running_total += age_of_decompressions_during_sample_period[oldest_age_of_csegs_sampled];
2496
2497 working_set_approximation += oldest_age_of_csegs_sampled * age_of_decompressions_during_sample_period[oldest_age_of_csegs_sampled];
2498
2499 if (running_total >= working_target) {
2500 break;
2501 }
2502 }
2503 if (oldest_age_of_csegs_sampled < DECOMPRESSION_SAMPLE_MAX_AGE) {
2504 working_set_approximation = (working_set_approximation * 1000) / elapsed_msecs_in_sample;
2505
2506 if (working_set_approximation < VM_PAGE_COMPRESSOR_COUNT) {
2507 running_total = overage_decompressions_during_sample_period;
2508
2509 for (oldest_age_of_csegs_sampled = DECOMPRESSION_SAMPLE_MAX_AGE - 1; oldest_age_of_csegs_sampled; oldest_age_of_csegs_sampled--) {
2510 running_total += age_of_decompressions_during_sample_period[oldest_age_of_csegs_sampled];
2511
2512 if (running_total >= aging_target) {
2513 break;
2514 }
2515 }
2516 swapout_target_age = (uint32_t)cur_ts_sec - oldest_age_of_csegs_sampled;
2517
2518 KERNEL_DEBUG(0xe0400020 | DBG_FUNC_END, swapout_target_age, working_set_approximation, VM_PAGE_COMPRESSOR_COUNT, 2, 0);
2519 } else {
2520 KERNEL_DEBUG(0xe0400020 | DBG_FUNC_END, working_set_approximation, VM_PAGE_COMPRESSOR_COUNT, 0, 3, 0);
2521 }
2522 } else {
2523 KERNEL_DEBUG(0xe0400020 | DBG_FUNC_END, working_target, running_total, 0, 4, 0);
2524 }
2525
2526 compressor_need_sample_reset = TRUE;
2527 need_eval_reset = TRUE;
2528 } else {
2529 KERNEL_DEBUG(0xe0400020 | DBG_FUNC_END, sample_period_decompression_count, (compressor_thrashing_threshold_per_10msecs * elapsed_msecs_in_sample) / 10, 0, 6, 0);
2530 }
2531 done:
2532 if (compressor_need_sample_reset == TRUE) {
2533 bzero(age_of_decompressions_during_sample_period, sizeof(age_of_decompressions_during_sample_period));
2534 overage_decompressions_during_sample_period = 0;
2535
2536 start_of_sample_period_sec = cur_ts_sec;
2537 start_of_sample_period_nsec = cur_ts_nsec;
2538 sample_period_decompression_count = 0;
2539 sample_period_compression_count = 0;
2540 last_eval_decompression_count = 0;
2541 last_eval_compression_count = 0;
2542 compressor_need_sample_reset = FALSE;
2543 }
2544 if (need_eval_reset == TRUE) {
2545 start_of_eval_period_sec = cur_ts_sec;
2546 start_of_eval_period_nsec = cur_ts_nsec;
2547 }
2548 }
2549
2550
2551 int compaction_swapper_init_now = 0;
2552 int compaction_swapper_running = 0;
2553 int compaction_swapper_awakened = 0;
2554 int compaction_swapper_abort = 0;
2555
2556 bool
vm_compressor_swapout_is_ripe()2557 vm_compressor_swapout_is_ripe()
2558 {
2559 bool is_ripe = false;
2560 if (vm_swapout_ripe_segments == TRUE && c_overage_swapped_count < c_overage_swapped_limit) {
2561 c_segment_t c_seg;
2562 clock_sec_t now;
2563 clock_sec_t age;
2564 clock_nsec_t nsec;
2565
2566 clock_get_system_nanotime(&now, &nsec);
2567 age = 0;
2568
2569 lck_mtx_lock_spin_always(c_list_lock);
2570
2571 if (!queue_empty(&c_age_list_head)) {
2572 c_seg = (c_segment_t) queue_first(&c_age_list_head);
2573
2574 age = now - c_seg->c_creation_ts;
2575 }
2576 lck_mtx_unlock_always(c_list_lock);
2577
2578 if (age >= vm_ripe_target_age) {
2579 is_ripe = true;
2580 }
2581 }
2582 return is_ripe;
2583 }
2584
2585 static bool
compressor_swapout_conditions_met(void)2586 compressor_swapout_conditions_met(void)
2587 {
2588 bool should_swap = false;
2589 if (COMPRESSOR_NEEDS_TO_SWAP()) {
2590 should_swap = true;
2591 vmcs_stats.compressor_swap_threshold_exceeded++;
2592 }
2593 if (VM_PAGE_Q_THROTTLED(&vm_pageout_queue_external) && vm_page_anonymous_count < (vm_page_inactive_count / 20)) {
2594 should_swap = true;
2595 vmcs_stats.external_q_throttled++;
2596 }
2597 if (vm_page_free_count < (vm_page_free_reserved - (COMPRESSOR_FREE_RESERVED_LIMIT * 2))) {
2598 should_swap = true;
2599 vmcs_stats.free_count_below_reserve++;
2600 }
2601 return should_swap;
2602 }
2603
2604 static bool
compressor_needs_to_swap()2605 compressor_needs_to_swap()
2606 {
2607 bool should_swap = false;
2608 if (vm_compressor_swapout_is_ripe()) {
2609 should_swap = true;
2610 goto check_if_low_space;
2611 }
2612
2613 if (VM_CONFIG_SWAP_IS_ACTIVE) {
2614 should_swap = compressor_swapout_conditions_met();
2615 if (should_swap) {
2616 goto check_if_low_space;
2617 }
2618 }
2619
2620 #if (XNU_TARGET_OS_OSX && __arm64__)
2621 /*
2622 * Thrashing detection disabled.
2623 */
2624 #else /* (XNU_TARGET_OS_OSX && __arm64__) */
2625
2626 if (vm_compressor_is_thrashing()) {
2627 should_swap = true;
2628 vmcs_stats.thrashing_detected++;
2629 }
2630
2631 #if CONFIG_PHANTOM_CACHE
2632 if (vm_phantom_cache_check_pressure()) {
2633 os_atomic_store(&memorystatus_phantom_cache_pressure, true, release);
2634 should_swap = true;
2635 }
2636 #endif
2637 if (swapout_target_age) {
2638 should_swap = true;
2639 }
2640 #endif /* (XNU_TARGET_OS_OSX && __arm64__) */
2641
2642 check_if_low_space:
2643
2644 #if CONFIG_JETSAM
2645 if (should_swap || vm_compressor_low_on_space() == TRUE) {
2646 if (vm_compressor_thrashing_detected == FALSE) {
2647 vm_compressor_thrashing_detected = TRUE;
2648
2649 if (swapout_target_age) {
2650 compressor_thrashing_induced_jetsam++;
2651 } else if (vm_compressor_low_on_space() == TRUE) {
2652 compressor_thrashing_induced_jetsam++;
2653 } else {
2654 filecache_thrashing_induced_jetsam++;
2655 }
2656 /*
2657 * Wake up the memorystatus thread so that it can return
2658 * the system to a healthy state (by killing processes).
2659 */
2660 memorystatus_thread_wake();
2661 }
2662 /*
2663 * let the jetsam take precedence over
2664 * any major compactions we might have
2665 * been able to do... otherwise we run
2666 * the risk of doing major compactions
2667 * on segments we're about to free up
2668 * due to the jetsam activity.
2669 */
2670 should_swap = false;
2671 if (memorystatus_swap_all_apps && vm_swap_low_on_space()) {
2672 vm_compressor_take_paging_space_action();
2673 }
2674 }
2675
2676 #else /* CONFIG_JETSAM */
2677 if (should_swap && vm_swap_low_on_space()) {
2678 vm_compressor_take_paging_space_action();
2679 }
2680 #endif /* CONFIG_JETSAM */
2681
2682 if (should_swap == false) {
2683 /*
2684 * vm_compressor_needs_to_major_compact returns true only if we're
2685 * about to run out of available compressor segments... in this
2686 * case, we absolutely need to run a major compaction even if
2687 * we've just kicked off a jetsam or we don't otherwise need to
2688 * swap... terminating objects releases
2689 * pages back to the uncompressed cache, but does not guarantee
2690 * that we will free up even a single compression segment
2691 */
2692 should_swap = vm_compressor_needs_to_major_compact();
2693 if (should_swap) {
2694 vmcs_stats.fragmentation_detected++;
2695 }
2696 }
2697
2698 /*
2699 * returning TRUE when swap_supported == FALSE
2700 * will cause the major compaction engine to
2701 * run, but will not trigger any swapping...
2702 * segments that have been major compacted
2703 * will be moved to the majorcompact queue
2704 */
2705 return should_swap;
2706 }
2707
2708 #if CONFIG_JETSAM
2709 /*
2710 * This function is called from the jetsam thread after killing something to
2711 * mitigate thrashing.
2712 *
2713 * We need to restart our thrashing detection heuristics since memory pressure
2714 * has potentially changed significantly, and we don't want to detect on old
2715 * data from before the jetsam.
2716 */
2717 void
vm_thrashing_jetsam_done(void)2718 vm_thrashing_jetsam_done(void)
2719 {
2720 vm_compressor_thrashing_detected = FALSE;
2721
2722 /* Were we compressor-thrashing or filecache-thrashing? */
2723 if (swapout_target_age) {
2724 swapout_target_age = 0;
2725 compressor_need_sample_reset = TRUE;
2726 }
2727 #if CONFIG_PHANTOM_CACHE
2728 else {
2729 vm_phantom_cache_restart_sample();
2730 }
2731 #endif
2732 }
2733 #endif /* CONFIG_JETSAM */
2734
2735 uint32_t vm_wake_compactor_swapper_calls = 0;
2736 uint32_t vm_run_compactor_already_running = 0;
2737 uint32_t vm_run_compactor_empty_minor_q = 0;
2738 uint32_t vm_run_compactor_did_compact = 0;
2739 uint32_t vm_run_compactor_waited = 0;
2740
2741 void
vm_run_compactor(void)2742 vm_run_compactor(void)
2743 {
2744 if (c_segment_count == 0) {
2745 return;
2746 }
2747
2748 lck_mtx_lock_spin_always(c_list_lock);
2749
2750 if (c_minor_count == 0) {
2751 vm_run_compactor_empty_minor_q++;
2752
2753 lck_mtx_unlock_always(c_list_lock);
2754 return;
2755 }
2756 if (compaction_swapper_running) {
2757 if (vm_pageout_state.vm_restricted_to_single_processor == FALSE) {
2758 vm_run_compactor_already_running++;
2759
2760 lck_mtx_unlock_always(c_list_lock);
2761 return;
2762 }
2763 vm_run_compactor_waited++;
2764
2765 assert_wait((event_t)&compaction_swapper_running, THREAD_UNINT);
2766
2767 lck_mtx_unlock_always(c_list_lock);
2768
2769 thread_block(THREAD_CONTINUE_NULL);
2770
2771 return;
2772 }
2773 vm_run_compactor_did_compact++;
2774
2775 fastwake_warmup = FALSE;
2776 compaction_swapper_running = 1;
2777
2778 vm_compressor_do_delayed_compactions(FALSE);
2779
2780 compaction_swapper_running = 0;
2781
2782 lck_mtx_unlock_always(c_list_lock);
2783
2784 thread_wakeup((event_t)&compaction_swapper_running);
2785 }
2786
2787
2788 void
vm_wake_compactor_swapper(void)2789 vm_wake_compactor_swapper(void)
2790 {
2791 if (compaction_swapper_running || compaction_swapper_awakened || c_segment_count == 0) {
2792 return;
2793 }
2794
2795 if (c_minor_count || vm_compressor_needs_to_major_compact()) {
2796 lck_mtx_lock_spin_always(c_list_lock);
2797
2798 fastwake_warmup = FALSE;
2799
2800 if (compaction_swapper_running == 0 && compaction_swapper_awakened == 0) {
2801 vm_wake_compactor_swapper_calls++;
2802
2803 compaction_swapper_awakened = 1;
2804 thread_wakeup((event_t)&c_compressor_swap_trigger);
2805 }
2806 lck_mtx_unlock_always(c_list_lock);
2807 }
2808 }
2809
2810
2811 void
vm_consider_swapping()2812 vm_consider_swapping()
2813 {
2814 c_segment_t c_seg, c_seg_next;
2815 clock_sec_t now;
2816 clock_nsec_t nsec;
2817
2818 assert(VM_CONFIG_SWAP_IS_PRESENT);
2819
2820 lck_mtx_lock_spin_always(c_list_lock);
2821
2822 compaction_swapper_abort = 1;
2823
2824 while (compaction_swapper_running) {
2825 assert_wait((event_t)&compaction_swapper_running, THREAD_UNINT);
2826
2827 lck_mtx_unlock_always(c_list_lock);
2828
2829 thread_block(THREAD_CONTINUE_NULL);
2830
2831 lck_mtx_lock_spin_always(c_list_lock);
2832 }
2833 compaction_swapper_abort = 0;
2834 compaction_swapper_running = 1;
2835
2836 vm_swapout_ripe_segments = TRUE;
2837
2838 if (!queue_empty(&c_major_list_head)) {
2839 clock_get_system_nanotime(&now, &nsec);
2840
2841 c_seg = (c_segment_t)queue_first(&c_major_list_head);
2842
2843 while (!queue_end(&c_major_list_head, (queue_entry_t)c_seg)) {
2844 if (c_overage_swapped_count >= c_overage_swapped_limit) {
2845 break;
2846 }
2847
2848 c_seg_next = (c_segment_t) queue_next(&c_seg->c_age_list);
2849
2850 if ((now - c_seg->c_creation_ts) >= vm_ripe_target_age) {
2851 lck_mtx_lock_spin_always(&c_seg->c_lock);
2852
2853 c_seg_switch_state(c_seg, C_ON_AGE_Q, FALSE);
2854
2855 lck_mtx_unlock_always(&c_seg->c_lock);
2856 }
2857 c_seg = c_seg_next;
2858 }
2859 }
2860 vm_compressor_compact_and_swap(FALSE);
2861
2862 compaction_swapper_running = 0;
2863
2864 vm_swapout_ripe_segments = FALSE;
2865
2866 lck_mtx_unlock_always(c_list_lock);
2867
2868 thread_wakeup((event_t)&compaction_swapper_running);
2869 }
2870
2871
2872 void
vm_consider_waking_compactor_swapper(void)2873 vm_consider_waking_compactor_swapper(void)
2874 {
2875 boolean_t need_wakeup = FALSE;
2876
2877 if (c_segment_count == 0) {
2878 return;
2879 }
2880
2881 if (compaction_swapper_running || compaction_swapper_awakened) {
2882 return;
2883 }
2884
2885 if (!compaction_swapper_inited && !compaction_swapper_init_now) {
2886 compaction_swapper_init_now = 1;
2887 need_wakeup = TRUE;
2888 }
2889
2890 if (c_minor_count && (COMPRESSOR_NEEDS_TO_MINOR_COMPACT())) {
2891 need_wakeup = TRUE;
2892 } else if (compressor_needs_to_swap()) {
2893 need_wakeup = TRUE;
2894 } else if (c_minor_count) {
2895 uint64_t total_bytes;
2896
2897 total_bytes = compressor_object->resident_page_count * PAGE_SIZE_64;
2898
2899 if ((total_bytes - compressor_bytes_used) > total_bytes / 10) {
2900 need_wakeup = TRUE;
2901 }
2902 }
2903 if (need_wakeup == TRUE) {
2904 lck_mtx_lock_spin_always(c_list_lock);
2905
2906 fastwake_warmup = FALSE;
2907
2908 if (compaction_swapper_running == 0 && compaction_swapper_awakened == 0) {
2909 memoryshot(VM_WAKEUP_COMPACTOR_SWAPPER, DBG_FUNC_NONE);
2910
2911 compaction_swapper_awakened = 1;
2912 thread_wakeup((event_t)&c_compressor_swap_trigger);
2913 }
2914 lck_mtx_unlock_always(c_list_lock);
2915 }
2916 }
2917
2918
2919 #define C_SWAPOUT_LIMIT 4
2920 #define DELAYED_COMPACTIONS_PER_PASS 30
2921
2922 void
vm_compressor_do_delayed_compactions(boolean_t flush_all)2923 vm_compressor_do_delayed_compactions(boolean_t flush_all)
2924 {
2925 c_segment_t c_seg;
2926 int number_compacted = 0;
2927 boolean_t needs_to_swap = FALSE;
2928 uint32_t c_swapout_count = 0;
2929
2930
2931 VM_DEBUG_CONSTANT_EVENT(vm_compressor_do_delayed_compactions, VM_COMPRESSOR_DO_DELAYED_COMPACTIONS, DBG_FUNC_START, c_minor_count, flush_all, 0, 0);
2932
2933 #if XNU_TARGET_OS_OSX
2934 LCK_MTX_ASSERT(c_list_lock, LCK_MTX_ASSERT_OWNED);
2935 #endif /* XNU_TARGET_OS_OSX */
2936
2937 while (!queue_empty(&c_minor_list_head) && needs_to_swap == FALSE) {
2938 c_seg = (c_segment_t)queue_first(&c_minor_list_head);
2939
2940 lck_mtx_lock_spin_always(&c_seg->c_lock);
2941
2942 if (c_seg->c_busy) {
2943 lck_mtx_unlock_always(c_list_lock);
2944 c_seg_wait_on_busy(c_seg);
2945 lck_mtx_lock_spin_always(c_list_lock);
2946
2947 continue;
2948 }
2949 C_SEG_BUSY(c_seg);
2950
2951 c_seg_do_minor_compaction_and_unlock(c_seg, TRUE, FALSE, TRUE);
2952
2953 c_swapout_count = c_early_swapout_count + c_regular_swapout_count + c_late_swapout_count;
2954 if (VM_CONFIG_SWAP_IS_ACTIVE && (number_compacted++ > DELAYED_COMPACTIONS_PER_PASS)) {
2955 if ((flush_all == TRUE || compressor_needs_to_swap()) && c_swapout_count < C_SWAPOUT_LIMIT) {
2956 needs_to_swap = TRUE;
2957 }
2958
2959 number_compacted = 0;
2960 }
2961 lck_mtx_lock_spin_always(c_list_lock);
2962 }
2963
2964 VM_DEBUG_CONSTANT_EVENT(vm_compressor_do_delayed_compactions, VM_COMPRESSOR_DO_DELAYED_COMPACTIONS, DBG_FUNC_END, c_minor_count, number_compacted, needs_to_swap, 0);
2965 }
2966
2967 int min_csegs_per_major_compaction = DELAYED_COMPACTIONS_PER_PASS;
2968
2969 static bool
vm_compressor_major_compact_cseg(c_segment_t c_seg,uint32_t * c_seg_considered,bool * bail_wanted_cseg,uint64_t * total_bytes_freed)2970 vm_compressor_major_compact_cseg(c_segment_t c_seg, uint32_t* c_seg_considered, bool* bail_wanted_cseg, uint64_t* total_bytes_freed)
2971 {
2972 /*
2973 * Major compaction
2974 */
2975 bool keep_compacting = true, fully_compacted = true;
2976 queue_head_t *list_head = NULL;
2977 c_segment_t c_seg_next;
2978 uint64_t bytes_to_free = 0, bytes_freed = 0;
2979 uint32_t number_considered = 0;
2980
2981 if (c_seg->c_state == C_ON_AGE_Q) {
2982 assert(!c_seg->c_has_donated_pages);
2983 list_head = &c_age_list_head;
2984 } else if (c_seg->c_state == C_ON_SWAPPEDIN_Q) {
2985 assert(c_seg->c_has_donated_pages);
2986 list_head = &c_late_swappedin_list_head;
2987 }
2988
2989 while (keep_compacting == TRUE) {
2990 assert(c_seg->c_busy);
2991
2992 /* look for another segment to consolidate */
2993
2994 c_seg_next = (c_segment_t) queue_next(&c_seg->c_age_list);
2995
2996 if (queue_end(list_head, (queue_entry_t)c_seg_next)) {
2997 break;
2998 }
2999
3000 assert(c_seg_next->c_state == c_seg->c_state);
3001
3002 number_considered++;
3003
3004 if (c_seg_major_compact_ok(c_seg, c_seg_next) == FALSE) {
3005 break;
3006 }
3007
3008 lck_mtx_lock_spin_always(&c_seg_next->c_lock);
3009
3010 if (c_seg_next->c_busy) {
3011 /*
3012 * We are going to block for our neighbor.
3013 * If our c_seg is wanted, we should unbusy
3014 * it because we don't know how long we might
3015 * have to block here.
3016 */
3017 if (c_seg->c_wanted) {
3018 lck_mtx_unlock_always(&c_seg_next->c_lock);
3019 fully_compacted = false;
3020 c_seg_major_compact_stats[c_seg_major_compact_stats_now].bailed_compactions++;
3021 *bail_wanted_cseg = true;
3022 break;
3023 }
3024
3025 lck_mtx_unlock_always(c_list_lock);
3026
3027 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 8, (void*) VM_KERNEL_ADDRPERM(c_seg_next), 0, 0);
3028
3029 c_seg_wait_on_busy(c_seg_next);
3030 lck_mtx_lock_spin_always(c_list_lock);
3031
3032 continue;
3033 }
3034 /* grab that segment */
3035 C_SEG_BUSY(c_seg_next);
3036
3037 bytes_to_free = C_SEG_OFFSET_TO_BYTES(c_seg_next->c_populated_offset);
3038 if (c_seg_do_minor_compaction_and_unlock(c_seg_next, FALSE, TRUE, TRUE)) {
3039 /*
3040 * found an empty c_segment and freed it
3041 * so we can't continue to use c_seg_next
3042 */
3043 bytes_freed += bytes_to_free;
3044 c_seg_major_compact_stats[c_seg_major_compact_stats_now].count_of_freed_segs++;
3045 continue;
3046 }
3047
3048 /* unlock the list ... */
3049 lck_mtx_unlock_always(c_list_lock);
3050
3051 /* do the major compaction */
3052
3053 keep_compacting = c_seg_major_compact(c_seg, c_seg_next);
3054
3055 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 9, keep_compacting, 0, 0);
3056
3057 PAGE_REPLACEMENT_DISALLOWED(TRUE);
3058
3059 lck_mtx_lock_spin_always(&c_seg_next->c_lock);
3060 /*
3061 * run a minor compaction on the donor segment
3062 * since we pulled at least some of it's
3063 * data into our target... if we've emptied
3064 * it, now is a good time to free it which
3065 * c_seg_minor_compaction_and_unlock also takes care of
3066 *
3067 * by passing TRUE, we ask for c_busy to be cleared
3068 * and c_wanted to be taken care of
3069 */
3070 bytes_to_free = C_SEG_OFFSET_TO_BYTES(c_seg_next->c_populated_offset);
3071 if (c_seg_minor_compaction_and_unlock(c_seg_next, TRUE)) {
3072 bytes_freed += bytes_to_free;
3073 c_seg_major_compact_stats[c_seg_major_compact_stats_now].count_of_freed_segs++;
3074 } else {
3075 bytes_to_free -= C_SEG_OFFSET_TO_BYTES(c_seg_next->c_populated_offset);
3076 bytes_freed += bytes_to_free;
3077 }
3078
3079 PAGE_REPLACEMENT_DISALLOWED(FALSE);
3080
3081 /* relock the list */
3082 lck_mtx_lock_spin_always(c_list_lock);
3083
3084 if (c_seg->c_wanted) {
3085 /*
3086 * Our c_seg is in demand. Let's
3087 * unbusy it and wakeup the waiters
3088 * instead of continuing the compaction
3089 * because we could be in this loop
3090 * for a while.
3091 */
3092 fully_compacted = false;
3093 *bail_wanted_cseg = true;
3094 c_seg_major_compact_stats[c_seg_major_compact_stats_now].bailed_compactions++;
3095 break;
3096 }
3097 } /* major compaction */
3098
3099 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 10, number_considered, *bail_wanted_cseg, 0);
3100
3101 *c_seg_considered += number_considered;
3102 *total_bytes_freed += bytes_freed;
3103
3104 lck_mtx_lock_spin_always(&c_seg->c_lock);
3105 return fully_compacted;
3106 }
3107
3108 #define TIME_SUB(rsecs, secs, rfrac, frac, unit) \
3109 MACRO_BEGIN \
3110 if ((int)((rfrac) -= (frac)) < 0) { \
3111 (rfrac) += (unit); \
3112 (rsecs) -= 1; \
3113 } \
3114 (rsecs) -= (secs); \
3115 MACRO_END
3116
3117 #if (XNU_TARGET_OS_OSX && __arm64__)
3118 clock_nsec_t c_process_major_report_over_ms = 9; /* report if over 9 ms */
3119 int c_process_major_yield_after = 1000; /* yield after moving 1,000 segments */
3120 uint64_t c_process_major_reports = 0;
3121 clock_sec_t c_process_major_max_sec = 0;
3122 clock_nsec_t c_process_major_max_nsec = 0;
3123 uint32_t c_process_major_peak_segcount = 0;
3124 static void
vm_compressor_process_major_segments(void)3125 vm_compressor_process_major_segments(void)
3126 {
3127 c_segment_t c_seg = NULL;
3128 int count = 0, total = 0, breaks = 0;
3129 clock_sec_t start_sec, end_sec;
3130 clock_nsec_t start_nsec, end_nsec;
3131 clock_nsec_t report_over_ns;
3132
3133 if (queue_empty(&c_major_list_head)) {
3134 return;
3135 }
3136
3137 // printf("%s: starting to move segments from MAJORQ to AGEQ\n", __FUNCTION__);
3138 if (c_process_major_report_over_ms != 0) {
3139 report_over_ns = c_process_major_report_over_ms * NSEC_PER_MSEC;
3140 } else {
3141 report_over_ns = (clock_nsec_t)-1;
3142 }
3143 clock_get_system_nanotime(&start_sec, &start_nsec);
3144 while (!queue_empty(&c_major_list_head)) {
3145 /* start from the end to preserve aging order */
3146 c_seg = (c_segment_t)queue_last(&c_major_list_head);
3147 lck_mtx_lock_spin_always(&c_seg->c_lock);
3148 c_seg_switch_state(c_seg, C_ON_AGE_Q, FALSE);
3149 lck_mtx_unlock_always(&c_seg->c_lock);
3150
3151 count++;
3152 if (count == c_process_major_yield_after ||
3153 queue_empty(&c_major_list_head)) {
3154 /* done or time to take a break */
3155 } else {
3156 /* keep going */
3157 continue;
3158 }
3159
3160 total += count;
3161 clock_get_system_nanotime(&end_sec, &end_nsec);
3162 TIME_SUB(end_sec, start_sec, end_nsec, start_nsec, NSEC_PER_SEC);
3163 if (end_sec > c_process_major_max_sec) {
3164 c_process_major_max_sec = end_sec;
3165 c_process_major_max_nsec = end_nsec;
3166 } else if (end_sec == c_process_major_max_sec &&
3167 end_nsec > c_process_major_max_nsec) {
3168 c_process_major_max_nsec = end_nsec;
3169 }
3170 if (total > c_process_major_peak_segcount) {
3171 c_process_major_peak_segcount = total;
3172 }
3173 if (end_sec > 0 ||
3174 end_nsec >= report_over_ns) {
3175 /* we used more than expected */
3176 c_process_major_reports++;
3177 printf("%s: moved %d/%d segments from MAJORQ to AGEQ in %lu.%09u seconds and %d breaks\n",
3178 __FUNCTION__, count, total,
3179 end_sec, end_nsec, breaks);
3180 }
3181 if (queue_empty(&c_major_list_head)) {
3182 /* done */
3183 break;
3184 }
3185 /* take a break to allow someone else to grab the lock */
3186 lck_mtx_unlock_always(c_list_lock);
3187 mutex_pause(0); /* 10 microseconds */
3188 lck_mtx_lock_spin_always(c_list_lock);
3189 /* start again */
3190 clock_get_system_nanotime(&start_sec, &start_nsec);
3191 count = 0;
3192 breaks++;
3193 }
3194 }
3195 #endif /* (XNU_TARGET_OS_OSX && __arm64__) */
3196
3197 /*
3198 * macOS special swappable csegs -> early_swapin queue
3199 * non-macOS special swappable+non-freezer csegs -> late_swapin queue
3200 * Processing special csegs means minor compacting each cseg and then
3201 * major compacting it and putting them on the early or late
3202 * (depending on platform) swapout queue.
3203 */
3204 static void
vm_compressor_process_special_swapped_in_segments_locked(void)3205 vm_compressor_process_special_swapped_in_segments_locked(void)
3206 {
3207 c_segment_t c_seg = NULL;
3208 bool switch_state = true, bail_wanted_cseg = false;
3209 unsigned int number_considered = 0, yield_after_considered_per_pass = 0;
3210 uint64_t bytes_freed = 0;
3211 queue_head_t *special_swappedin_list_head;
3212
3213 #if XNU_TARGET_OS_OSX
3214 special_swappedin_list_head = &c_early_swappedin_list_head;
3215 #else /* XNU_TARGET_OS_OSX */
3216 if (memorystatus_swap_all_apps) {
3217 special_swappedin_list_head = &c_late_swappedin_list_head;
3218 } else {
3219 /* called on unsupported config*/
3220 return;
3221 }
3222 #endif /* XNU_TARGET_OS_OSX */
3223
3224 yield_after_considered_per_pass = MAX(min_csegs_per_major_compaction, DELAYED_COMPACTIONS_PER_PASS);
3225 while (!queue_empty(special_swappedin_list_head)) {
3226 c_seg = (c_segment_t)queue_first(special_swappedin_list_head);
3227
3228 lck_mtx_lock_spin_always(&c_seg->c_lock);
3229
3230 if (c_seg->c_busy) {
3231 lck_mtx_unlock_always(c_list_lock);
3232 c_seg_wait_on_busy(c_seg);
3233 lck_mtx_lock_spin_always(c_list_lock);
3234 continue;
3235 }
3236
3237 C_SEG_BUSY(c_seg);
3238 lck_mtx_unlock_always(&c_seg->c_lock);
3239 lck_mtx_unlock_always(c_list_lock);
3240
3241 PAGE_REPLACEMENT_DISALLOWED(TRUE);
3242
3243 lck_mtx_lock_spin_always(&c_seg->c_lock);
3244
3245 if (c_seg_minor_compaction_and_unlock(c_seg, FALSE /*clear busy?*/)) {
3246 /*
3247 * found an empty c_segment and freed it
3248 * so go grab the next guy in the queue
3249 */
3250 PAGE_REPLACEMENT_DISALLOWED(FALSE);
3251 lck_mtx_lock_spin_always(c_list_lock);
3252 continue;
3253 }
3254
3255 PAGE_REPLACEMENT_DISALLOWED(FALSE);
3256 lck_mtx_lock_spin_always(c_list_lock);
3257
3258 switch_state = vm_compressor_major_compact_cseg(c_seg, &number_considered, &bail_wanted_cseg, &bytes_freed);
3259 assert(c_seg->c_busy);
3260 assert(!c_seg->c_on_minorcompact_q);
3261
3262 if (switch_state) {
3263 if (VM_CONFIG_SWAP_IS_ACTIVE || VM_CONFIG_FREEZER_SWAP_IS_ACTIVE) {
3264 /*
3265 * Ordinarily we let swapped in segments age out + get
3266 * major compacted with the rest of the c_segs on the ageQ.
3267 * But the early donated c_segs, if well compacted, should be
3268 * kept ready to be swapped out if needed. These are typically
3269 * describing memory belonging to a leaky app (macOS) or a swap-
3270 * capable app (iPadOS) and for the latter we can keep these
3271 * around longer because we control the triggers in the memorystatus
3272 * subsystem
3273 */
3274 c_seg_switch_state(c_seg, C_ON_SWAPOUT_Q, FALSE);
3275 }
3276 }
3277
3278 C_SEG_WAKEUP_DONE(c_seg);
3279
3280 lck_mtx_unlock_always(&c_seg->c_lock);
3281
3282 if (number_considered >= yield_after_considered_per_pass) {
3283 if (bail_wanted_cseg) {
3284 /*
3285 * We stopped major compactions on a c_seg
3286 * that is wanted. We don't know the priority
3287 * of the waiter unfortunately but we are at
3288 * a very high priority and so, just in case
3289 * the waiter is a critical system daemon or
3290 * UI thread, let's give up the CPU in case
3291 * the system is running a few CPU intensive
3292 * tasks.
3293 */
3294 bail_wanted_cseg = false;
3295 lck_mtx_unlock_always(c_list_lock);
3296
3297 mutex_pause(2); /* 100us yield */
3298
3299 lck_mtx_lock_spin_always(c_list_lock);
3300 }
3301
3302 number_considered = 0;
3303 }
3304 }
3305 }
3306
3307 void
vm_compressor_process_special_swapped_in_segments(void)3308 vm_compressor_process_special_swapped_in_segments(void)
3309 {
3310 lck_mtx_lock_spin_always(c_list_lock);
3311 vm_compressor_process_special_swapped_in_segments_locked();
3312 lck_mtx_unlock_always(c_list_lock);
3313 }
3314
3315 #define C_SEGMENT_SWAPPEDIN_AGE_LIMIT 10
3316 /*
3317 * Processing regular csegs means aging them.
3318 */
3319 static void
vm_compressor_process_regular_swapped_in_segments(boolean_t flush_all)3320 vm_compressor_process_regular_swapped_in_segments(boolean_t flush_all)
3321 {
3322 c_segment_t c_seg;
3323 clock_sec_t now;
3324 clock_nsec_t nsec;
3325
3326 clock_get_system_nanotime(&now, &nsec);
3327
3328 while (!queue_empty(&c_regular_swappedin_list_head)) {
3329 c_seg = (c_segment_t)queue_first(&c_regular_swappedin_list_head);
3330
3331 if (flush_all == FALSE && (now - c_seg->c_swappedin_ts) < C_SEGMENT_SWAPPEDIN_AGE_LIMIT) {
3332 break;
3333 }
3334
3335 lck_mtx_lock_spin_always(&c_seg->c_lock);
3336
3337 c_seg_switch_state(c_seg, C_ON_AGE_Q, FALSE);
3338 c_seg->c_agedin_ts = (uint32_t) now;
3339
3340 lck_mtx_unlock_always(&c_seg->c_lock);
3341 }
3342 }
3343
3344
3345 extern int vm_num_swap_files;
3346 extern int vm_num_pinned_swap_files;
3347 extern int vm_swappin_enabled;
3348
3349 extern unsigned int vm_swapfile_total_segs_used;
3350 extern unsigned int vm_swapfile_total_segs_alloced;
3351
3352
3353 void
vm_compressor_flush(void)3354 vm_compressor_flush(void)
3355 {
3356 uint64_t vm_swap_put_failures_at_start;
3357 wait_result_t wait_result = 0;
3358 AbsoluteTime startTime, endTime;
3359 clock_sec_t now_sec;
3360 clock_nsec_t now_nsec;
3361 uint64_t nsec;
3362 c_segment_t c_seg, c_seg_next;
3363
3364 HIBLOG("vm_compressor_flush - starting\n");
3365
3366 clock_get_uptime(&startTime);
3367
3368 lck_mtx_lock_spin_always(c_list_lock);
3369
3370 fastwake_warmup = FALSE;
3371 compaction_swapper_abort = 1;
3372
3373 while (compaction_swapper_running) {
3374 assert_wait((event_t)&compaction_swapper_running, THREAD_UNINT);
3375
3376 lck_mtx_unlock_always(c_list_lock);
3377
3378 thread_block(THREAD_CONTINUE_NULL);
3379
3380 lck_mtx_lock_spin_always(c_list_lock);
3381 }
3382 compaction_swapper_abort = 0;
3383 compaction_swapper_running = 1;
3384
3385 hibernate_flushing = TRUE;
3386 hibernate_no_swapspace = FALSE;
3387 hibernate_flush_timed_out = FALSE;
3388 c_generation_id_flush_barrier = c_generation_id + 1000;
3389
3390 clock_get_system_nanotime(&now_sec, &now_nsec);
3391 hibernate_flushing_deadline = now_sec + HIBERNATE_FLUSHING_SECS_TO_COMPLETE;
3392
3393 vm_swap_put_failures_at_start = vm_swap_put_failures;
3394
3395 /*
3396 * We are about to hibernate and so we want all segments flushed to disk.
3397 * Segments that are on the major compaction queue won't be considered in
3398 * the vm_compressor_compact_and_swap() pass. So we need to bring them to
3399 * the ageQ for consideration.
3400 */
3401 if (!queue_empty(&c_major_list_head)) {
3402 c_seg = (c_segment_t)queue_first(&c_major_list_head);
3403
3404 while (!queue_end(&c_major_list_head, (queue_entry_t)c_seg)) {
3405 c_seg_next = (c_segment_t) queue_next(&c_seg->c_age_list);
3406 lck_mtx_lock_spin_always(&c_seg->c_lock);
3407 c_seg_switch_state(c_seg, C_ON_AGE_Q, FALSE);
3408 lck_mtx_unlock_always(&c_seg->c_lock);
3409 c_seg = c_seg_next;
3410 }
3411 }
3412 vm_compressor_compact_and_swap(TRUE);
3413
3414 while (!queue_empty(&c_early_swapout_list_head) || !queue_empty(&c_regular_swapout_list_head) || !queue_empty(&c_late_swapout_list_head)) {
3415 assert_wait_timeout((event_t) &compaction_swapper_running, THREAD_INTERRUPTIBLE, 5000, 1000 * NSEC_PER_USEC);
3416
3417 lck_mtx_unlock_always(c_list_lock);
3418
3419 wait_result = thread_block(THREAD_CONTINUE_NULL);
3420
3421 lck_mtx_lock_spin_always(c_list_lock);
3422
3423 if (wait_result == THREAD_TIMED_OUT) {
3424 break;
3425 }
3426 }
3427 hibernate_flushing = FALSE;
3428 compaction_swapper_running = 0;
3429
3430 if (vm_swap_put_failures > vm_swap_put_failures_at_start) {
3431 HIBLOG("vm_compressor_flush failed to clean %llu segments - vm_page_compressor_count(%d)\n",
3432 vm_swap_put_failures - vm_swap_put_failures_at_start, VM_PAGE_COMPRESSOR_COUNT);
3433 }
3434
3435 lck_mtx_unlock_always(c_list_lock);
3436
3437 thread_wakeup((event_t)&compaction_swapper_running);
3438
3439 clock_get_uptime(&endTime);
3440 SUB_ABSOLUTETIME(&endTime, &startTime);
3441 absolutetime_to_nanoseconds(endTime, &nsec);
3442
3443 HIBLOG("vm_compressor_flush completed - took %qd msecs - vm_num_swap_files = %d, vm_num_pinned_swap_files = %d, vm_swappin_enabled = %d\n",
3444 nsec / 1000000ULL, vm_num_swap_files, vm_num_pinned_swap_files, vm_swappin_enabled);
3445 }
3446
3447
3448 int compaction_swap_trigger_thread_awakened = 0;
3449
3450 static void
vm_compressor_swap_trigger_thread(void)3451 vm_compressor_swap_trigger_thread(void)
3452 {
3453 current_thread()->options |= TH_OPT_VMPRIV;
3454
3455 /*
3456 * compaction_swapper_init_now is set when the first call to
3457 * vm_consider_waking_compactor_swapper is made from
3458 * vm_pageout_scan... since this function is called upon
3459 * thread creation, we want to make sure to delay adjusting
3460 * the tuneables until we are awakened via vm_pageout_scan
3461 * so that we are at a point where the vm_swapfile_open will
3462 * be operating on the correct directory (in case the default
3463 * of using the VM volume is overridden by the dynamic_pager)
3464 */
3465 if (compaction_swapper_init_now) {
3466 vm_compaction_swapper_do_init();
3467
3468 if (vm_pageout_state.vm_restricted_to_single_processor == TRUE) {
3469 thread_vm_bind_group_add();
3470 }
3471 #if CONFIG_THREAD_GROUPS
3472 thread_group_vm_add();
3473 #endif
3474 thread_set_thread_name(current_thread(), "VM_cswap_trigger");
3475 compaction_swapper_init_now = 0;
3476 }
3477 lck_mtx_lock_spin_always(c_list_lock);
3478
3479 compaction_swap_trigger_thread_awakened++;
3480 compaction_swapper_awakened = 0;
3481
3482 if (compaction_swapper_running == 0) {
3483 compaction_swapper_running = 1;
3484
3485 vm_compressor_compact_and_swap(FALSE);
3486
3487 compaction_swapper_running = 0;
3488 }
3489 assert_wait((event_t)&c_compressor_swap_trigger, THREAD_UNINT);
3490
3491 if (compaction_swapper_running == 0) {
3492 thread_wakeup((event_t)&compaction_swapper_running);
3493 }
3494
3495 lck_mtx_unlock_always(c_list_lock);
3496
3497 thread_block((thread_continue_t)vm_compressor_swap_trigger_thread);
3498
3499 /* NOTREACHED */
3500 }
3501
3502
3503 void
vm_compressor_record_warmup_start(void)3504 vm_compressor_record_warmup_start(void)
3505 {
3506 c_segment_t c_seg;
3507
3508 lck_mtx_lock_spin_always(c_list_lock);
3509
3510 if (first_c_segment_to_warm_generation_id == 0) {
3511 if (!queue_empty(&c_age_list_head)) {
3512 c_seg = (c_segment_t)queue_last(&c_age_list_head);
3513
3514 first_c_segment_to_warm_generation_id = c_seg->c_generation_id;
3515 } else {
3516 first_c_segment_to_warm_generation_id = 0;
3517 }
3518
3519 fastwake_recording_in_progress = TRUE;
3520 }
3521 lck_mtx_unlock_always(c_list_lock);
3522 }
3523
3524
3525 void
vm_compressor_record_warmup_end(void)3526 vm_compressor_record_warmup_end(void)
3527 {
3528 c_segment_t c_seg;
3529
3530 lck_mtx_lock_spin_always(c_list_lock);
3531
3532 if (fastwake_recording_in_progress == TRUE) {
3533 if (!queue_empty(&c_age_list_head)) {
3534 c_seg = (c_segment_t)queue_last(&c_age_list_head);
3535
3536 last_c_segment_to_warm_generation_id = c_seg->c_generation_id;
3537 } else {
3538 last_c_segment_to_warm_generation_id = first_c_segment_to_warm_generation_id;
3539 }
3540
3541 fastwake_recording_in_progress = FALSE;
3542
3543 HIBLOG("vm_compressor_record_warmup (%qd - %qd)\n", first_c_segment_to_warm_generation_id, last_c_segment_to_warm_generation_id);
3544 }
3545 lck_mtx_unlock_always(c_list_lock);
3546 }
3547
3548
3549 #define DELAY_TRIM_ON_WAKE_SECS 25
3550
3551 void
vm_compressor_delay_trim(void)3552 vm_compressor_delay_trim(void)
3553 {
3554 clock_sec_t sec;
3555 clock_nsec_t nsec;
3556
3557 clock_get_system_nanotime(&sec, &nsec);
3558 dont_trim_until_ts = sec + DELAY_TRIM_ON_WAKE_SECS;
3559 }
3560
3561
3562 void
vm_compressor_do_warmup(void)3563 vm_compressor_do_warmup(void)
3564 {
3565 lck_mtx_lock_spin_always(c_list_lock);
3566
3567 if (first_c_segment_to_warm_generation_id == last_c_segment_to_warm_generation_id) {
3568 first_c_segment_to_warm_generation_id = last_c_segment_to_warm_generation_id = 0;
3569
3570 lck_mtx_unlock_always(c_list_lock);
3571 return;
3572 }
3573
3574 if (compaction_swapper_running == 0 && compaction_swapper_awakened == 0) {
3575 fastwake_warmup = TRUE;
3576
3577 compaction_swapper_awakened = 1;
3578 thread_wakeup((event_t)&c_compressor_swap_trigger);
3579 }
3580 lck_mtx_unlock_always(c_list_lock);
3581 }
3582
3583 void
do_fastwake_warmup_all(void)3584 do_fastwake_warmup_all(void)
3585 {
3586 lck_mtx_lock_spin_always(c_list_lock);
3587
3588 if (queue_empty(&c_swappedout_list_head) && queue_empty(&c_swappedout_sparse_list_head)) {
3589 lck_mtx_unlock_always(c_list_lock);
3590 return;
3591 }
3592
3593 fastwake_warmup = TRUE;
3594
3595 do_fastwake_warmup(&c_swappedout_list_head, TRUE);
3596
3597 do_fastwake_warmup(&c_swappedout_sparse_list_head, TRUE);
3598
3599 fastwake_warmup = FALSE;
3600
3601 lck_mtx_unlock_always(c_list_lock);
3602 }
3603
3604 void
do_fastwake_warmup(queue_head_t * c_queue,boolean_t consider_all_cseg)3605 do_fastwake_warmup(queue_head_t *c_queue, boolean_t consider_all_cseg)
3606 {
3607 c_segment_t c_seg = NULL;
3608 AbsoluteTime startTime, endTime;
3609 uint64_t nsec;
3610
3611
3612 HIBLOG("vm_compressor_fastwake_warmup (%qd - %qd) - starting\n", first_c_segment_to_warm_generation_id, last_c_segment_to_warm_generation_id);
3613
3614 clock_get_uptime(&startTime);
3615
3616 lck_mtx_unlock_always(c_list_lock);
3617
3618 proc_set_thread_policy(current_thread(),
3619 TASK_POLICY_INTERNAL, TASK_POLICY_IO, THROTTLE_LEVEL_COMPRESSOR_TIER2);
3620
3621 PAGE_REPLACEMENT_DISALLOWED(TRUE);
3622
3623 lck_mtx_lock_spin_always(c_list_lock);
3624
3625 while (!queue_empty(c_queue) && fastwake_warmup == TRUE) {
3626 c_seg = (c_segment_t) queue_first(c_queue);
3627
3628 if (consider_all_cseg == FALSE) {
3629 if (c_seg->c_generation_id < first_c_segment_to_warm_generation_id ||
3630 c_seg->c_generation_id > last_c_segment_to_warm_generation_id) {
3631 break;
3632 }
3633
3634 if (vm_page_free_count < (AVAILABLE_MEMORY / 4)) {
3635 break;
3636 }
3637 }
3638
3639 lck_mtx_lock_spin_always(&c_seg->c_lock);
3640 lck_mtx_unlock_always(c_list_lock);
3641
3642 if (c_seg->c_busy) {
3643 PAGE_REPLACEMENT_DISALLOWED(FALSE);
3644 c_seg_wait_on_busy(c_seg);
3645 PAGE_REPLACEMENT_DISALLOWED(TRUE);
3646 } else {
3647 if (c_seg_swapin(c_seg, TRUE, FALSE) == 0) {
3648 lck_mtx_unlock_always(&c_seg->c_lock);
3649 }
3650 c_segment_warmup_count++;
3651
3652 PAGE_REPLACEMENT_DISALLOWED(FALSE);
3653 vm_pageout_io_throttle();
3654 PAGE_REPLACEMENT_DISALLOWED(TRUE);
3655 }
3656 lck_mtx_lock_spin_always(c_list_lock);
3657 }
3658 lck_mtx_unlock_always(c_list_lock);
3659
3660 PAGE_REPLACEMENT_DISALLOWED(FALSE);
3661
3662 proc_set_thread_policy(current_thread(),
3663 TASK_POLICY_INTERNAL, TASK_POLICY_IO, THROTTLE_LEVEL_COMPRESSOR_TIER0);
3664
3665 clock_get_uptime(&endTime);
3666 SUB_ABSOLUTETIME(&endTime, &startTime);
3667 absolutetime_to_nanoseconds(endTime, &nsec);
3668
3669 HIBLOG("vm_compressor_fastwake_warmup completed - took %qd msecs\n", nsec / 1000000ULL);
3670
3671 lck_mtx_lock_spin_always(c_list_lock);
3672
3673 if (consider_all_cseg == FALSE) {
3674 first_c_segment_to_warm_generation_id = last_c_segment_to_warm_generation_id = 0;
3675 }
3676 }
3677
3678 extern bool vm_swapout_thread_running;
3679 extern boolean_t compressor_store_stop_compaction;
3680
3681 void
vm_compressor_compact_and_swap(boolean_t flush_all)3682 vm_compressor_compact_and_swap(boolean_t flush_all)
3683 {
3684 c_segment_t c_seg;
3685 bool switch_state, bail_wanted_cseg = false;
3686 clock_sec_t now;
3687 clock_nsec_t nsec;
3688 mach_timespec_t start_ts, end_ts;
3689 unsigned int number_considered, wanted_cseg_found, yield_after_considered_per_pass, number_yields;
3690 uint64_t bytes_freed, delta_usec;
3691 uint32_t c_swapout_count = 0;
3692
3693 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_START, c_age_count, c_minor_count, c_major_count, vm_page_free_count);
3694
3695 if (fastwake_warmup == TRUE) {
3696 uint64_t starting_warmup_count;
3697
3698 starting_warmup_count = c_segment_warmup_count;
3699
3700 KERNEL_DEBUG_CONSTANT(IOKDBG_CODE(DBG_HIBERNATE, 11) | DBG_FUNC_START, c_segment_warmup_count,
3701 first_c_segment_to_warm_generation_id, last_c_segment_to_warm_generation_id, 0, 0);
3702 do_fastwake_warmup(&c_swappedout_list_head, FALSE);
3703 KERNEL_DEBUG_CONSTANT(IOKDBG_CODE(DBG_HIBERNATE, 11) | DBG_FUNC_END, c_segment_warmup_count, c_segment_warmup_count - starting_warmup_count, 0, 0, 0);
3704
3705 fastwake_warmup = FALSE;
3706 }
3707
3708 #if (XNU_TARGET_OS_OSX && __arm64__)
3709 /*
3710 * Re-considering major csegs showed benefits on all platforms by
3711 * significantly reducing fragmentation and getting back memory.
3712 * However, on smaller devices, eg watch, there was increased power
3713 * use for the additional compactions. And the turnover in csegs on
3714 * those smaller platforms is high enough in the decompression/free
3715 * path that we can skip reconsidering them here because we already
3716 * consider them for major compaction in those paths.
3717 */
3718 vm_compressor_process_major_segments();
3719 #endif /* (XNU_TARGET_OS_OSX && __arm64__) */
3720
3721 /*
3722 * it's possible for the c_age_list_head to be empty if we
3723 * hit our limits for growing the compressor pool and we subsequently
3724 * hibernated... on the next hibernation we could see the queue as
3725 * empty and not proceeed even though we have a bunch of segments on
3726 * the swapped in queue that need to be dealt with.
3727 */
3728 vm_compressor_do_delayed_compactions(flush_all);
3729 vm_compressor_process_special_swapped_in_segments_locked();
3730 vm_compressor_process_regular_swapped_in_segments(flush_all);
3731
3732 /*
3733 * we only need to grab the timestamp once per
3734 * invocation of this function since the
3735 * timescale we're interested in is measured
3736 * in days
3737 */
3738 clock_get_system_nanotime(&now, &nsec);
3739
3740 start_ts.tv_sec = (int) now;
3741 start_ts.tv_nsec = nsec;
3742 delta_usec = 0;
3743 number_considered = 0;
3744 wanted_cseg_found = 0;
3745 number_yields = 0;
3746 bytes_freed = 0;
3747 yield_after_considered_per_pass = MAX(min_csegs_per_major_compaction, DELAYED_COMPACTIONS_PER_PASS);
3748
3749 #if 0
3750 /**
3751 * SW: Need to figure out how to properly rate limit this log because it is currently way too
3752 * noisy. rdar://99379414 (Figure out how to rate limit the fragmentation level logging)
3753 */
3754 os_log(OS_LOG_DEFAULT, "memorystatus: before compaction fragmentation level %u\n", vm_compressor_fragmentation_level());
3755 #endif
3756
3757 while (!queue_empty(&c_age_list_head) && !compaction_swapper_abort && !compressor_store_stop_compaction) {
3758 if (hibernate_flushing == TRUE) {
3759 clock_sec_t sec;
3760
3761 if (hibernate_should_abort()) {
3762 HIBLOG("vm_compressor_flush - hibernate_should_abort returned TRUE\n");
3763 break;
3764 }
3765 if (hibernate_no_swapspace == TRUE) {
3766 HIBLOG("vm_compressor_flush - out of swap space\n");
3767 break;
3768 }
3769 if (vm_swap_files_pinned() == FALSE) {
3770 HIBLOG("vm_compressor_flush - unpinned swap files\n");
3771 break;
3772 }
3773 if (hibernate_in_progress_with_pinned_swap == TRUE &&
3774 (vm_swapfile_total_segs_alloced == vm_swapfile_total_segs_used)) {
3775 HIBLOG("vm_compressor_flush - out of pinned swap space\n");
3776 break;
3777 }
3778 clock_get_system_nanotime(&sec, &nsec);
3779
3780 if (sec > hibernate_flushing_deadline) {
3781 hibernate_flush_timed_out = TRUE;
3782 HIBLOG("vm_compressor_flush - failed to finish before deadline\n");
3783 break;
3784 }
3785 }
3786
3787 c_swapout_count = c_early_swapout_count + c_regular_swapout_count + c_late_swapout_count;
3788 if (VM_CONFIG_SWAP_IS_ACTIVE && !vm_swap_out_of_space() && c_swapout_count >= C_SWAPOUT_LIMIT) {
3789 assert_wait_timeout((event_t) &compaction_swapper_running, THREAD_INTERRUPTIBLE, 100, 1000 * NSEC_PER_USEC);
3790
3791 if (!vm_swapout_thread_running) {
3792 thread_wakeup((event_t)&vm_swapout_thread);
3793 }
3794
3795 lck_mtx_unlock_always(c_list_lock);
3796
3797 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 1, c_swapout_count, 0, 0);
3798
3799 thread_block(THREAD_CONTINUE_NULL);
3800
3801 lck_mtx_lock_spin_always(c_list_lock);
3802 }
3803 /*
3804 * Minor compactions
3805 */
3806 vm_compressor_do_delayed_compactions(flush_all);
3807
3808 /*
3809 * vm_compressor_process_early_swapped_in_segments()
3810 * might be too aggressive. So OFF for now.
3811 */
3812 vm_compressor_process_regular_swapped_in_segments(flush_all);
3813
3814 /* Recompute because we dropped the c_list_lock above*/
3815 c_swapout_count = c_early_swapout_count + c_regular_swapout_count + c_late_swapout_count;
3816 if (VM_CONFIG_SWAP_IS_ACTIVE && !vm_swap_out_of_space() && c_swapout_count >= C_SWAPOUT_LIMIT) {
3817 /*
3818 * we timed out on the above thread_block
3819 * let's loop around and try again
3820 * the timeout allows us to continue
3821 * to do minor compactions to make
3822 * more memory available
3823 */
3824 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 2, c_swapout_count, 0, 0);
3825
3826 continue;
3827 }
3828
3829 /*
3830 * Swap out segments?
3831 */
3832 if (flush_all == FALSE) {
3833 bool needs_to_swap;
3834
3835 lck_mtx_unlock_always(c_list_lock);
3836
3837 needs_to_swap = compressor_needs_to_swap();
3838
3839 lck_mtx_lock_spin_always(c_list_lock);
3840
3841 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 3, needs_to_swap, 0, 0);
3842
3843 if (!needs_to_swap) {
3844 break;
3845 }
3846 }
3847 if (queue_empty(&c_age_list_head)) {
3848 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 4, c_age_count, 0, 0);
3849 break;
3850 }
3851 c_seg = (c_segment_t) queue_first(&c_age_list_head);
3852
3853 assert(c_seg->c_state == C_ON_AGE_Q);
3854
3855 if (flush_all == TRUE && c_seg->c_generation_id > c_generation_id_flush_barrier) {
3856 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 5, 0, 0, 0);
3857 break;
3858 }
3859
3860 lck_mtx_lock_spin_always(&c_seg->c_lock);
3861
3862 if (c_seg->c_busy) {
3863 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 6, (void*) VM_KERNEL_ADDRPERM(c_seg), 0, 0);
3864
3865 lck_mtx_unlock_always(c_list_lock);
3866 c_seg_wait_on_busy(c_seg);
3867 lck_mtx_lock_spin_always(c_list_lock);
3868
3869 continue;
3870 }
3871 C_SEG_BUSY(c_seg);
3872
3873 if (c_seg_do_minor_compaction_and_unlock(c_seg, FALSE, TRUE, TRUE)) {
3874 /*
3875 * found an empty c_segment and freed it
3876 * so go grab the next guy in the queue
3877 */
3878 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 7, 0, 0, 0);
3879 c_seg_major_compact_stats[c_seg_major_compact_stats_now].count_of_freed_segs++;
3880 continue;
3881 }
3882
3883 switch_state = vm_compressor_major_compact_cseg(c_seg, &number_considered, &bail_wanted_cseg, &bytes_freed);
3884 if (bail_wanted_cseg) {
3885 wanted_cseg_found++;
3886 bail_wanted_cseg = false;
3887 }
3888
3889 assert(c_seg->c_busy);
3890 assert(!c_seg->c_on_minorcompact_q);
3891
3892 if (switch_state) {
3893 if (VM_CONFIG_SWAP_IS_ACTIVE) {
3894 int new_state = C_ON_SWAPOUT_Q;
3895 #if (XNU_TARGET_OS_OSX && __arm64__)
3896 if (flush_all == false && compressor_swapout_conditions_met() == false) {
3897 new_state = C_ON_MAJORCOMPACT_Q;
3898 }
3899 #endif /* (XNU_TARGET_OS_OSX && __arm64__) */
3900
3901 if (new_state == C_ON_SWAPOUT_Q) {
3902 /*
3903 * This mode of putting a generic c_seg on the swapout list is
3904 * only supported when we have general swapping enabled
3905 */
3906 clock_sec_t lnow;
3907 clock_nsec_t lnsec;
3908 clock_get_system_nanotime(&lnow, &lnsec);
3909 if (c_seg->c_agedin_ts && (lnow - c_seg->c_agedin_ts) < 30) {
3910 vmcs_stats.unripe_under_30s++;
3911 } else if (c_seg->c_agedin_ts && (lnow - c_seg->c_agedin_ts) < 60) {
3912 vmcs_stats.unripe_under_60s++;
3913 } else if (c_seg->c_agedin_ts && (lnow - c_seg->c_agedin_ts) < 300) {
3914 vmcs_stats.unripe_under_300s++;
3915 }
3916 }
3917
3918 c_seg_switch_state(c_seg, new_state, FALSE);
3919 } else {
3920 if ((vm_swapout_ripe_segments == TRUE && c_overage_swapped_count < c_overage_swapped_limit)) {
3921 assert(VM_CONFIG_SWAP_IS_PRESENT);
3922 /*
3923 * we are running compressor sweeps with swap-behind
3924 * make sure the c_seg has aged enough before swapping it
3925 * out...
3926 */
3927 if ((now - c_seg->c_creation_ts) >= vm_ripe_target_age) {
3928 c_seg->c_overage_swap = TRUE;
3929 c_overage_swapped_count++;
3930 c_seg_switch_state(c_seg, C_ON_SWAPOUT_Q, FALSE);
3931 }
3932 }
3933 }
3934 if (c_seg->c_state == C_ON_AGE_Q) {
3935 /*
3936 * this c_seg didn't get moved to the swapout queue
3937 * so we need to move it out of the way...
3938 * we just did a major compaction on it so put it
3939 * on that queue
3940 */
3941 c_seg_switch_state(c_seg, C_ON_MAJORCOMPACT_Q, FALSE);
3942 } else {
3943 c_seg_major_compact_stats[c_seg_major_compact_stats_now].wasted_space_in_swapouts += c_seg_bufsize - c_seg->c_bytes_used;
3944 c_seg_major_compact_stats[c_seg_major_compact_stats_now].count_of_swapouts++;
3945 }
3946 }
3947
3948 C_SEG_WAKEUP_DONE(c_seg);
3949
3950 lck_mtx_unlock_always(&c_seg->c_lock);
3951
3952 /*
3953 * On systems _with_ general swap, regardless of jetsam, we wake up the swapout thread here.
3954 * On systems _without_ general swap, it's the responsibility of the memorystatus
3955 * subsystem to wake up the swapper.
3956 * TODO: When we have full jetsam support on a swap enabled system, we will need to revisit
3957 * this policy.
3958 */
3959 if (VM_CONFIG_SWAP_IS_ACTIVE && c_swapout_count) {
3960 /*
3961 * We don't pause/yield here because we will either
3962 * yield below or at the top of the loop with the
3963 * assert_wait_timeout.
3964 */
3965 if (!vm_swapout_thread_running) {
3966 thread_wakeup((event_t)&vm_swapout_thread);
3967 }
3968 }
3969
3970 if (number_considered >= yield_after_considered_per_pass) {
3971 if (wanted_cseg_found) {
3972 /*
3973 * We stopped major compactions on a c_seg
3974 * that is wanted. We don't know the priority
3975 * of the waiter unfortunately but we are at
3976 * a very high priority and so, just in case
3977 * the waiter is a critical system daemon or
3978 * UI thread, let's give up the CPU in case
3979 * the system is running a few CPU intensive
3980 * tasks.
3981 */
3982 lck_mtx_unlock_always(c_list_lock);
3983
3984 mutex_pause(2); /* 100us yield */
3985
3986 number_yields++;
3987
3988 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_NONE, 11, number_considered, number_yields, 0);
3989
3990 lck_mtx_lock_spin_always(c_list_lock);
3991 }
3992
3993 number_considered = 0;
3994 wanted_cseg_found = 0;
3995 }
3996 }
3997 clock_get_system_nanotime(&now, &nsec);
3998
3999 end_ts = major_compact_ts = (mach_timespec_t){.tv_sec = (int)now, .tv_nsec = nsec};
4000
4001 SUB_MACH_TIMESPEC(&end_ts, &start_ts);
4002
4003 delta_usec = (end_ts.tv_sec * USEC_PER_SEC) + (end_ts.tv_nsec / NSEC_PER_USEC) - (number_yields * 100);
4004
4005 delta_usec = MAX(1, delta_usec); /* we could have 0 usec run if conditions weren't right */
4006
4007 c_seg_major_compact_stats[c_seg_major_compact_stats_now].bytes_freed_rate_us = (bytes_freed / delta_usec);
4008
4009 if ((c_seg_major_compact_stats_now + 1) == C_SEG_MAJOR_COMPACT_STATS_MAX) {
4010 c_seg_major_compact_stats_now = 0;
4011 } else {
4012 c_seg_major_compact_stats_now++;
4013 }
4014
4015 assert(c_seg_major_compact_stats_now < C_SEG_MAJOR_COMPACT_STATS_MAX);
4016
4017 VM_DEBUG_CONSTANT_EVENT(vm_compressor_compact_and_swap, VM_COMPRESSOR_COMPACT_AND_SWAP, DBG_FUNC_END, c_age_count, c_minor_count, c_major_count, vm_page_free_count);
4018 }
4019
4020
4021 static c_segment_t
c_seg_allocate(c_segment_t * current_chead)4022 c_seg_allocate(c_segment_t *current_chead)
4023 {
4024 c_segment_t c_seg;
4025 int min_needed;
4026 int size_to_populate;
4027 c_segment_t *donate_queue_head;
4028
4029 #if XNU_TARGET_OS_OSX
4030 if (vm_compressor_low_on_space()) {
4031 vm_compressor_take_paging_space_action();
4032 }
4033 #endif /* XNU_TARGET_OS_OSX */
4034
4035 if ((c_seg = *current_chead) == NULL) {
4036 uint32_t c_segno;
4037
4038 lck_mtx_lock_spin_always(c_list_lock);
4039
4040 while (c_segments_busy == TRUE) {
4041 assert_wait((event_t) (&c_segments_busy), THREAD_UNINT);
4042
4043 lck_mtx_unlock_always(c_list_lock);
4044
4045 thread_block(THREAD_CONTINUE_NULL);
4046
4047 lck_mtx_lock_spin_always(c_list_lock);
4048 }
4049 if (c_free_segno_head == (uint32_t)-1) {
4050 uint32_t c_segments_available_new;
4051 uint32_t compressed_pages;
4052
4053 #if CONFIG_FREEZE
4054 if (freezer_incore_cseg_acct) {
4055 compressed_pages = c_segment_pages_compressed_incore;
4056 } else {
4057 compressed_pages = c_segment_pages_compressed;
4058 }
4059 #else
4060 compressed_pages = c_segment_pages_compressed;
4061 #endif /* CONFIG_FREEZE */
4062
4063 if (c_segments_available >= c_segments_limit || compressed_pages >= c_segment_pages_compressed_limit) {
4064 lck_mtx_unlock_always(c_list_lock);
4065
4066 return NULL;
4067 }
4068 c_segments_busy = TRUE;
4069 lck_mtx_unlock_always(c_list_lock);
4070
4071 kernel_memory_populate((vm_offset_t)c_segments_next_page,
4072 PAGE_SIZE, KMA_NOFAIL | KMA_KOBJECT,
4073 VM_KERN_MEMORY_COMPRESSOR);
4074 c_segments_next_page += PAGE_SIZE;
4075
4076 c_segments_available_new = c_segments_available + C_SEGMENTS_PER_PAGE;
4077
4078 if (c_segments_available_new > c_segments_limit) {
4079 c_segments_available_new = c_segments_limit;
4080 }
4081
4082 for (c_segno = c_segments_available + 1; c_segno < c_segments_available_new; c_segno++) {
4083 c_segments[c_segno - 1].c_segno = c_segno;
4084 }
4085
4086 lck_mtx_lock_spin_always(c_list_lock);
4087
4088 c_segments[c_segno - 1].c_segno = c_free_segno_head;
4089 c_free_segno_head = c_segments_available;
4090 c_segments_available = c_segments_available_new;
4091
4092 c_segments_busy = FALSE;
4093 thread_wakeup((event_t) (&c_segments_busy));
4094 }
4095 c_segno = c_free_segno_head;
4096 assert(c_segno >= 0 && c_segno < c_segments_limit);
4097
4098 c_free_segno_head = (uint32_t)c_segments[c_segno].c_segno;
4099
4100 /*
4101 * do the rest of the bookkeeping now while we're still behind
4102 * the list lock and grab our generation id now into a local
4103 * so that we can install it once we have the c_seg allocated
4104 */
4105 c_segment_count++;
4106 if (c_segment_count > c_segment_count_max) {
4107 c_segment_count_max = c_segment_count;
4108 }
4109
4110 lck_mtx_unlock_always(c_list_lock);
4111
4112 c_seg = zalloc_flags(compressor_segment_zone, Z_WAITOK | Z_ZERO);
4113
4114 c_seg->c_store.c_buffer = (int32_t *)C_SEG_BUFFER_ADDRESS(c_segno);
4115
4116 lck_mtx_init(&c_seg->c_lock, &vm_compressor_lck_grp, LCK_ATTR_NULL);
4117
4118 c_seg->c_state = C_IS_EMPTY;
4119 c_seg->c_firstemptyslot = C_SLOT_MAX_INDEX;
4120 c_seg->c_mysegno = c_segno;
4121
4122 lck_mtx_lock_spin_always(c_list_lock);
4123 c_empty_count++;
4124 c_seg_switch_state(c_seg, C_IS_FILLING, FALSE);
4125 c_segments[c_segno].c_seg = c_seg;
4126 assert(c_segments[c_segno].c_segno > c_segments_available);
4127 lck_mtx_unlock_always(c_list_lock);
4128
4129 for (int i = 0; i < vm_pageout_state.vm_compressor_thread_count; i++) {
4130 #if XNU_TARGET_OS_OSX
4131 donate_queue_head = (c_segment_t*) &(pgo_iothread_internal_state[i].current_early_swapout_chead);
4132 #else /* XNU_TARGET_OS_OSX */
4133 if (memorystatus_swap_all_apps) {
4134 donate_queue_head = (c_segment_t*) &(pgo_iothread_internal_state[i].current_late_swapout_chead);
4135 } else {
4136 donate_queue_head = NULL;
4137 }
4138 #endif /* XNU_TARGET_OS_OSX */
4139
4140 if (current_chead == donate_queue_head) {
4141 c_seg->c_has_donated_pages = 1;
4142 break;
4143 }
4144 }
4145
4146 *current_chead = c_seg;
4147
4148 #if DEVELOPMENT || DEBUG
4149 C_SEG_MAKE_WRITEABLE(c_seg);
4150 #endif
4151 }
4152 c_seg_alloc_nextslot(c_seg);
4153
4154 size_to_populate = c_seg_allocsize - C_SEG_OFFSET_TO_BYTES(c_seg->c_populated_offset);
4155
4156 if (size_to_populate) {
4157 min_needed = PAGE_SIZE + (c_seg_allocsize - c_seg_bufsize);
4158
4159 if (C_SEG_OFFSET_TO_BYTES(c_seg->c_populated_offset - c_seg->c_nextoffset) < (unsigned) min_needed) {
4160 if (size_to_populate > C_SEG_MAX_POPULATE_SIZE) {
4161 size_to_populate = C_SEG_MAX_POPULATE_SIZE;
4162 }
4163
4164 OSAddAtomic64(size_to_populate / PAGE_SIZE, &vm_pageout_vminfo.vm_compressor_pages_grabbed);
4165
4166 kernel_memory_populate(
4167 (vm_offset_t) &c_seg->c_store.c_buffer[c_seg->c_populated_offset],
4168 size_to_populate,
4169 KMA_NOFAIL | KMA_COMPRESSOR,
4170 VM_KERN_MEMORY_COMPRESSOR);
4171 } else {
4172 size_to_populate = 0;
4173 }
4174 }
4175 PAGE_REPLACEMENT_DISALLOWED(TRUE);
4176
4177 lck_mtx_lock_spin_always(&c_seg->c_lock);
4178
4179 if (size_to_populate) {
4180 c_seg->c_populated_offset += C_SEG_BYTES_TO_OFFSET(size_to_populate);
4181 }
4182
4183 return c_seg;
4184 }
4185
4186 #if DEVELOPMENT || DEBUG
4187 #if CONFIG_FREEZE
4188 extern boolean_t memorystatus_freeze_to_memory;
4189 #endif /* CONFIG_FREEZE */
4190 #endif /* DEVELOPMENT || DEBUG */
4191 uint64_t c_seg_total_donated_bytes = 0; /* For testing/debugging only for now. Remove and add new counters for vm_stat.*/
4192
4193 uint64_t c_seg_filled_no_contention = 0;
4194 uint64_t c_seg_filled_contention = 0;
4195 clock_sec_t c_seg_filled_contention_sec_max = 0;
4196 clock_nsec_t c_seg_filled_contention_nsec_max = 0;
4197
4198 static void
c_current_seg_filled(c_segment_t c_seg,c_segment_t * current_chead)4199 c_current_seg_filled(c_segment_t c_seg, c_segment_t *current_chead)
4200 {
4201 uint32_t unused_bytes;
4202 uint32_t offset_to_depopulate;
4203 int new_state = C_ON_AGE_Q;
4204 clock_sec_t sec;
4205 clock_nsec_t nsec;
4206 bool head_insert = false, wakeup_swapout_thread = false;
4207
4208 unused_bytes = trunc_page_32(C_SEG_OFFSET_TO_BYTES(c_seg->c_populated_offset - c_seg->c_nextoffset));
4209
4210 if (unused_bytes) {
4211 offset_to_depopulate = C_SEG_BYTES_TO_OFFSET(round_page_32(C_SEG_OFFSET_TO_BYTES(c_seg->c_nextoffset)));
4212
4213 /*
4214 * release the extra physical page(s) at the end of the segment
4215 */
4216 lck_mtx_unlock_always(&c_seg->c_lock);
4217
4218 kernel_memory_depopulate(
4219 (vm_offset_t) &c_seg->c_store.c_buffer[offset_to_depopulate],
4220 unused_bytes,
4221 KMA_COMPRESSOR,
4222 VM_KERN_MEMORY_COMPRESSOR);
4223
4224 lck_mtx_lock_spin_always(&c_seg->c_lock);
4225
4226 c_seg->c_populated_offset = offset_to_depopulate;
4227 }
4228 assert(C_SEG_OFFSET_TO_BYTES(c_seg->c_populated_offset) <= c_seg_bufsize);
4229
4230 #if DEVELOPMENT || DEBUG
4231 {
4232 boolean_t c_seg_was_busy = FALSE;
4233
4234 if (!c_seg->c_busy) {
4235 C_SEG_BUSY(c_seg);
4236 } else {
4237 c_seg_was_busy = TRUE;
4238 }
4239
4240 lck_mtx_unlock_always(&c_seg->c_lock);
4241
4242 C_SEG_WRITE_PROTECT(c_seg);
4243
4244 lck_mtx_lock_spin_always(&c_seg->c_lock);
4245
4246 if (c_seg_was_busy == FALSE) {
4247 C_SEG_WAKEUP_DONE(c_seg);
4248 }
4249 }
4250 #endif
4251
4252 #if CONFIG_FREEZE
4253 if (current_chead == (c_segment_t*) &(freezer_context_global.freezer_ctx_chead) &&
4254 VM_CONFIG_SWAP_IS_PRESENT &&
4255 VM_CONFIG_FREEZER_SWAP_IS_ACTIVE
4256 #if DEVELOPMENT || DEBUG
4257 && !memorystatus_freeze_to_memory
4258 #endif /* DEVELOPMENT || DEBUG */
4259 ) {
4260 new_state = C_ON_SWAPOUT_Q;
4261 wakeup_swapout_thread = true;
4262 }
4263 #endif /* CONFIG_FREEZE */
4264
4265 if (vm_darkwake_mode == TRUE) {
4266 new_state = C_ON_SWAPOUT_Q;
4267 head_insert = true;
4268 wakeup_swapout_thread = true;
4269 } else {
4270 c_segment_t *donate_queue_head;
4271 for (int i = 0; i < vm_pageout_state.vm_compressor_thread_count; i++) {
4272 #if XNU_TARGET_OS_OSX
4273 donate_queue_head = (c_segment_t*) &(pgo_iothread_internal_state[i].current_early_swapout_chead);
4274 #else /* XNU_TARGET_OS_OSX */
4275 donate_queue_head = (c_segment_t*) &(pgo_iothread_internal_state[i].current_late_swapout_chead);
4276 #endif /* XNU_TARGET_OS_OSX */
4277
4278 if (current_chead == donate_queue_head) {
4279 assert(c_seg->c_has_donated_pages);
4280 new_state = C_ON_SWAPOUT_Q;
4281 c_seg_total_donated_bytes += c_seg->c_bytes_used;
4282 break;
4283 }
4284 }
4285 }
4286
4287 clock_get_system_nanotime(&sec, &nsec);
4288 c_seg->c_creation_ts = (uint32_t)sec;
4289
4290 if (!lck_mtx_try_lock_spin_always(c_list_lock)) {
4291 clock_sec_t sec2;
4292 clock_nsec_t nsec2;
4293
4294 lck_mtx_lock_spin_always(c_list_lock);
4295 clock_get_system_nanotime(&sec2, &nsec2);
4296 TIME_SUB(sec2, sec, nsec2, nsec, NSEC_PER_SEC);
4297 // printf("FBDP %s: head %p waited for c_list_lock for %lu.%09u seconds\n", __FUNCTION__, current_chead, sec2, nsec2);
4298 if (sec2 > c_seg_filled_contention_sec_max) {
4299 c_seg_filled_contention_sec_max = sec2;
4300 c_seg_filled_contention_nsec_max = nsec2;
4301 } else if (sec2 == c_seg_filled_contention_sec_max &&
4302 nsec2 > c_seg_filled_contention_nsec_max) {
4303 c_seg_filled_contention_nsec_max = nsec2;
4304 }
4305 c_seg_filled_contention++;
4306 } else {
4307 c_seg_filled_no_contention++;
4308 }
4309
4310 #if CONFIG_FREEZE
4311 if (current_chead == (c_segment_t*) &(freezer_context_global.freezer_ctx_chead)) {
4312 if (freezer_context_global.freezer_ctx_task->donates_own_pages) {
4313 assert(!c_seg->c_has_donated_pages);
4314 c_seg->c_has_donated_pages = 1;
4315 OSAddAtomic(c_seg->c_slots_used, &c_segment_pages_compressed_incore_late_swapout);
4316 }
4317 c_seg->c_has_freezer_pages = 1;
4318 }
4319 #endif /* CONFIG_FREEZE */
4320
4321 c_seg->c_generation_id = c_generation_id++;
4322 c_seg_switch_state(c_seg, new_state, head_insert);
4323
4324 #if CONFIG_FREEZE
4325 /*
4326 * Donated segments count as frozen to swap if we go through the freezer.
4327 * TODO: What we need is a new ledger and cseg state that can describe
4328 * a frozen cseg from a donated task so we can accurately decrement it on
4329 * swapins.
4330 */
4331 if (current_chead == (c_segment_t*) &(freezer_context_global.freezer_ctx_chead) && (c_seg->c_state == C_ON_SWAPOUT_Q)) {
4332 /*
4333 * darkwake and freezer can't co-exist together
4334 * We'll need to fix this accounting as a start.
4335 * And early donation c_segs are separate from frozen c_segs.
4336 */
4337 assert(vm_darkwake_mode == FALSE);
4338 c_seg_update_task_owner(c_seg, freezer_context_global.freezer_ctx_task);
4339 freezer_context_global.freezer_ctx_swapped_bytes += c_seg->c_bytes_used;
4340 }
4341 #endif /* CONFIG_FREEZE */
4342
4343 if (c_seg->c_state == C_ON_AGE_Q && C_SEG_UNUSED_BYTES(c_seg) >= PAGE_SIZE) {
4344 #if CONFIG_FREEZE
4345 assert(c_seg->c_task_owner == NULL);
4346 #endif /* CONFIG_FREEZE */
4347 c_seg_need_delayed_compaction(c_seg, TRUE);
4348 }
4349
4350 lck_mtx_unlock_always(c_list_lock);
4351
4352 if (wakeup_swapout_thread) {
4353 /*
4354 * Darkwake and Freeze configs always
4355 * wake up the swapout thread because
4356 * the compactor thread that normally handles
4357 * it may not be running as much in these
4358 * configs.
4359 */
4360 thread_wakeup((event_t)&vm_swapout_thread);
4361 }
4362
4363 *current_chead = NULL;
4364 }
4365
4366 /*
4367 * returns with c_seg locked
4368 */
4369 void
c_seg_swapin_requeue(c_segment_t c_seg,boolean_t has_data,boolean_t minor_compact_ok,boolean_t age_on_swapin_q)4370 c_seg_swapin_requeue(c_segment_t c_seg, boolean_t has_data, boolean_t minor_compact_ok, boolean_t age_on_swapin_q)
4371 {
4372 clock_sec_t sec;
4373 clock_nsec_t nsec;
4374
4375 clock_get_system_nanotime(&sec, &nsec);
4376
4377 lck_mtx_lock_spin_always(c_list_lock);
4378 lck_mtx_lock_spin_always(&c_seg->c_lock);
4379
4380 assert(c_seg->c_busy_swapping);
4381 assert(c_seg->c_busy);
4382
4383 c_seg->c_busy_swapping = 0;
4384
4385 if (c_seg->c_overage_swap == TRUE) {
4386 c_overage_swapped_count--;
4387 c_seg->c_overage_swap = FALSE;
4388 }
4389 if (has_data == TRUE) {
4390 if (age_on_swapin_q == TRUE || c_seg->c_has_donated_pages) {
4391 #if CONFIG_FREEZE
4392 /*
4393 * If a segment has both identities, frozen and donated bits set, the donated
4394 * bit wins on the swapin path. This is because the segment is being swapped back
4395 * in and so is in demand and should be given more time to spend in memory before
4396 * being swapped back out under pressure.
4397 */
4398 if (c_seg->c_has_donated_pages) {
4399 c_seg->c_has_freezer_pages = 0;
4400 }
4401 #endif /* CONFIG_FREEZE */
4402 c_seg_switch_state(c_seg, C_ON_SWAPPEDIN_Q, FALSE);
4403 } else {
4404 c_seg_switch_state(c_seg, C_ON_AGE_Q, FALSE);
4405 }
4406
4407 if (minor_compact_ok == TRUE && !c_seg->c_on_minorcompact_q && C_SEG_UNUSED_BYTES(c_seg) >= PAGE_SIZE) {
4408 c_seg_need_delayed_compaction(c_seg, TRUE);
4409 }
4410 } else {
4411 c_seg->c_store.c_buffer = (int32_t*) NULL;
4412 c_seg->c_populated_offset = C_SEG_BYTES_TO_OFFSET(0);
4413
4414 c_seg_switch_state(c_seg, C_ON_BAD_Q, FALSE);
4415 }
4416 c_seg->c_swappedin_ts = (uint32_t)sec;
4417 c_seg->c_swappedin = true;
4418
4419 lck_mtx_unlock_always(c_list_lock);
4420 }
4421
4422
4423
4424 /*
4425 * c_seg has to be locked and is returned locked if the c_seg isn't freed
4426 * PAGE_REPLACMENT_DISALLOWED has to be TRUE on entry and is returned TRUE
4427 * c_seg_swapin returns 1 if the c_seg was freed, 0 otherwise
4428 */
4429
4430 int
c_seg_swapin(c_segment_t c_seg,boolean_t force_minor_compaction,boolean_t age_on_swapin_q)4431 c_seg_swapin(c_segment_t c_seg, boolean_t force_minor_compaction, boolean_t age_on_swapin_q)
4432 {
4433 vm_offset_t addr = 0;
4434 uint32_t io_size = 0;
4435 uint64_t f_offset;
4436 thread_pri_floor_t token;
4437
4438 assert(C_SEG_IS_ONDISK(c_seg));
4439
4440 #if !CHECKSUM_THE_SWAP
4441 c_seg_trim_tail(c_seg);
4442 #endif
4443 io_size = round_page_32(C_SEG_OFFSET_TO_BYTES(c_seg->c_populated_offset));
4444 f_offset = c_seg->c_store.c_swap_handle;
4445
4446 C_SEG_BUSY(c_seg);
4447 c_seg->c_busy_swapping = 1;
4448
4449 /*
4450 * This thread is likely going to block for I/O.
4451 * Make sure it is ready to run when the I/O completes because
4452 * it needs to clear the busy bit on the c_seg so that other
4453 * waiting threads can make progress too.
4454 */
4455 token = thread_priority_floor_start();
4456 lck_mtx_unlock_always(&c_seg->c_lock);
4457
4458 PAGE_REPLACEMENT_DISALLOWED(FALSE);
4459
4460 addr = (vm_offset_t)C_SEG_BUFFER_ADDRESS(c_seg->c_mysegno);
4461 c_seg->c_store.c_buffer = (int32_t*) addr;
4462
4463 kernel_memory_populate(addr, io_size, KMA_NOFAIL | KMA_COMPRESSOR,
4464 VM_KERN_MEMORY_COMPRESSOR);
4465
4466 if (vm_swap_get(c_seg, f_offset, io_size) != KERN_SUCCESS) {
4467 PAGE_REPLACEMENT_DISALLOWED(TRUE);
4468
4469 kernel_memory_depopulate(addr, io_size, KMA_COMPRESSOR,
4470 VM_KERN_MEMORY_COMPRESSOR);
4471
4472 c_seg_swapin_requeue(c_seg, FALSE, TRUE, age_on_swapin_q);
4473 } else {
4474 #if ENCRYPTED_SWAP
4475 vm_swap_decrypt(c_seg);
4476 #endif /* ENCRYPTED_SWAP */
4477
4478 #if CHECKSUM_THE_SWAP
4479 if (c_seg->cseg_swap_size != io_size) {
4480 panic("swapin size doesn't match swapout size");
4481 }
4482
4483 if (c_seg->cseg_hash != vmc_hash((char*) c_seg->c_store.c_buffer, (int)io_size)) {
4484 panic("c_seg_swapin - Swap hash mismatch");
4485 }
4486 #endif /* CHECKSUM_THE_SWAP */
4487
4488 PAGE_REPLACEMENT_DISALLOWED(TRUE);
4489
4490 c_seg_swapin_requeue(c_seg, TRUE, force_minor_compaction == TRUE ? FALSE : TRUE, age_on_swapin_q);
4491
4492 #if CONFIG_FREEZE
4493 /*
4494 * c_seg_swapin_requeue() returns with the c_seg lock held.
4495 */
4496 if (!lck_mtx_try_lock_spin_always(c_list_lock)) {
4497 assert(c_seg->c_busy);
4498
4499 lck_mtx_unlock_always(&c_seg->c_lock);
4500 lck_mtx_lock_spin_always(c_list_lock);
4501 lck_mtx_lock_spin_always(&c_seg->c_lock);
4502 }
4503
4504 if (c_seg->c_task_owner) {
4505 c_seg_update_task_owner(c_seg, NULL);
4506 }
4507
4508 lck_mtx_unlock_always(c_list_lock);
4509
4510 OSAddAtomic(c_seg->c_slots_used, &c_segment_pages_compressed_incore);
4511 if (c_seg->c_has_donated_pages) {
4512 OSAddAtomic(c_seg->c_slots_used, &c_segment_pages_compressed_incore_late_swapout);
4513 }
4514 #endif /* CONFIG_FREEZE */
4515
4516 OSAddAtomic64(c_seg->c_bytes_used, &compressor_bytes_used);
4517
4518 if (force_minor_compaction == TRUE) {
4519 if (c_seg_minor_compaction_and_unlock(c_seg, FALSE)) {
4520 /*
4521 * c_seg was completely empty so it was freed,
4522 * so be careful not to reference it again
4523 *
4524 * Drop the boost so that the thread priority
4525 * is returned back to where it is supposed to be.
4526 */
4527 thread_priority_floor_end(&token);
4528 return 1;
4529 }
4530
4531 lck_mtx_lock_spin_always(&c_seg->c_lock);
4532 }
4533 }
4534 C_SEG_WAKEUP_DONE(c_seg);
4535
4536 /*
4537 * Drop the boost so that the thread priority
4538 * is returned back to where it is supposed to be.
4539 */
4540 thread_priority_floor_end(&token);
4541
4542 return 0;
4543 }
4544
4545
4546 static void
c_segment_sv_hash_drop_ref(int hash_indx)4547 c_segment_sv_hash_drop_ref(int hash_indx)
4548 {
4549 struct c_sv_hash_entry o_sv_he, n_sv_he;
4550
4551 while (1) {
4552 o_sv_he.he_record = c_segment_sv_hash_table[hash_indx].he_record;
4553
4554 n_sv_he.he_ref = o_sv_he.he_ref - 1;
4555 n_sv_he.he_data = o_sv_he.he_data;
4556
4557 if (OSCompareAndSwap64((UInt64)o_sv_he.he_record, (UInt64)n_sv_he.he_record, (UInt64 *) &c_segment_sv_hash_table[hash_indx].he_record) == TRUE) {
4558 if (n_sv_he.he_ref == 0) {
4559 OSAddAtomic(-1, &c_segment_svp_in_hash);
4560 }
4561 break;
4562 }
4563 }
4564 }
4565
4566
4567 static int
c_segment_sv_hash_insert(uint32_t data)4568 c_segment_sv_hash_insert(uint32_t data)
4569 {
4570 int hash_sindx;
4571 int misses;
4572 struct c_sv_hash_entry o_sv_he, n_sv_he;
4573 boolean_t got_ref = FALSE;
4574
4575 if (data == 0) {
4576 OSAddAtomic(1, &c_segment_svp_zero_compressions);
4577 } else {
4578 OSAddAtomic(1, &c_segment_svp_nonzero_compressions);
4579 }
4580
4581 hash_sindx = data & C_SV_HASH_MASK;
4582
4583 for (misses = 0; misses < C_SV_HASH_MAX_MISS; misses++) {
4584 o_sv_he.he_record = c_segment_sv_hash_table[hash_sindx].he_record;
4585
4586 while (o_sv_he.he_data == data || o_sv_he.he_ref == 0) {
4587 n_sv_he.he_ref = o_sv_he.he_ref + 1;
4588 n_sv_he.he_data = data;
4589
4590 if (OSCompareAndSwap64((UInt64)o_sv_he.he_record, (UInt64)n_sv_he.he_record, (UInt64 *) &c_segment_sv_hash_table[hash_sindx].he_record) == TRUE) {
4591 if (n_sv_he.he_ref == 1) {
4592 OSAddAtomic(1, &c_segment_svp_in_hash);
4593 }
4594 got_ref = TRUE;
4595 break;
4596 }
4597 o_sv_he.he_record = c_segment_sv_hash_table[hash_sindx].he_record;
4598 }
4599 if (got_ref == TRUE) {
4600 break;
4601 }
4602 hash_sindx++;
4603
4604 if (hash_sindx == C_SV_HASH_SIZE) {
4605 hash_sindx = 0;
4606 }
4607 }
4608 if (got_ref == FALSE) {
4609 return -1;
4610 }
4611
4612 return hash_sindx;
4613 }
4614
4615
4616 #if RECORD_THE_COMPRESSED_DATA
4617
4618 static void
c_compressed_record_data(char * src,int c_size)4619 c_compressed_record_data(char *src, int c_size)
4620 {
4621 if ((c_compressed_record_cptr + c_size + 4) >= c_compressed_record_ebuf) {
4622 panic("c_compressed_record_cptr >= c_compressed_record_ebuf");
4623 }
4624
4625 *(int *)((void *)c_compressed_record_cptr) = c_size;
4626
4627 c_compressed_record_cptr += 4;
4628
4629 memcpy(c_compressed_record_cptr, src, c_size);
4630 c_compressed_record_cptr += c_size;
4631 }
4632 #endif
4633
4634
4635 static int
c_compress_page(char * src,c_slot_mapping_t slot_ptr,c_segment_t * current_chead,char * scratch_buf)4636 c_compress_page(char *src, c_slot_mapping_t slot_ptr, c_segment_t *current_chead, char *scratch_buf)
4637 {
4638 int c_size = -1;
4639 int c_rounded_size = 0;
4640 int max_csize;
4641 c_slot_t cs;
4642 c_segment_t c_seg;
4643 bool single_value = false;
4644
4645 KERNEL_DEBUG(0xe0400000 | DBG_FUNC_START, *current_chead, 0, 0, 0, 0);
4646 retry:
4647 if ((c_seg = c_seg_allocate(current_chead)) == NULL) {
4648 return 1;
4649 }
4650 /*
4651 * returns with c_seg lock held
4652 * and PAGE_REPLACEMENT_DISALLOWED(TRUE)...
4653 * c_nextslot has been allocated and
4654 * c_store.c_buffer populated
4655 */
4656 assert(c_seg->c_state == C_IS_FILLING);
4657
4658 cs = C_SEG_SLOT_FROM_INDEX(c_seg, c_seg->c_nextslot);
4659
4660 C_SLOT_ASSERT_PACKABLE(slot_ptr);
4661 cs->c_packed_ptr = C_SLOT_PACK_PTR(slot_ptr);
4662
4663 cs->c_offset = c_seg->c_nextoffset;
4664
4665 max_csize = c_seg_bufsize - C_SEG_OFFSET_TO_BYTES((int32_t)cs->c_offset);
4666
4667 if (max_csize > PAGE_SIZE) {
4668 max_csize = PAGE_SIZE;
4669 }
4670
4671 #if CHECKSUM_THE_DATA
4672 cs->c_hash_data = vmc_hash(src, PAGE_SIZE);
4673 #endif
4674 boolean_t incomp_copy = FALSE;
4675 int max_csize_adj = (max_csize - 4);
4676
4677 if (vm_compressor_algorithm() != VM_COMPRESSOR_DEFAULT_CODEC) {
4678 #if defined(__arm64__)
4679 uint16_t ccodec = CINVALID;
4680 uint32_t inline_popcount;
4681 if (max_csize >= C_SEG_OFFSET_ALIGNMENT_BOUNDARY) {
4682 c_size = metacompressor((const uint8_t *) src,
4683 (uint8_t *) &c_seg->c_store.c_buffer[cs->c_offset],
4684 max_csize_adj, &ccodec,
4685 scratch_buf, &incomp_copy, &inline_popcount);
4686 assert(inline_popcount == C_SLOT_NO_POPCOUNT);
4687
4688 #if C_SEG_OFFSET_ALIGNMENT_BOUNDARY > 4
4689 if (c_size > max_csize_adj) {
4690 c_size = -1;
4691 }
4692 #endif
4693 } else {
4694 c_size = -1;
4695 }
4696 assert(ccodec == CCWK || ccodec == CCLZ4);
4697 cs->c_codec = ccodec;
4698 #endif
4699 } else {
4700 #if defined(__arm64__)
4701 cs->c_codec = CCWK;
4702 __unreachable_ok_push
4703 if (PAGE_SIZE == 4096) {
4704 c_size = WKdm_compress_4k((WK_word *)(uintptr_t)src, (WK_word *)(uintptr_t)&c_seg->c_store.c_buffer[cs->c_offset],
4705 (WK_word *)(uintptr_t)scratch_buf, max_csize_adj);
4706 } else {
4707 c_size = WKdm_compress_16k((WK_word *)(uintptr_t)src, (WK_word *)(uintptr_t)&c_seg->c_store.c_buffer[cs->c_offset],
4708 (WK_word *)(uintptr_t)scratch_buf, max_csize_adj);
4709 }
4710 __unreachable_ok_pop
4711 #else
4712 c_size = WKdm_compress_new((const WK_word *)(uintptr_t)src, (WK_word *)(uintptr_t)&c_seg->c_store.c_buffer[cs->c_offset],
4713 (WK_word *)(uintptr_t)scratch_buf, max_csize_adj);
4714 #endif
4715 }
4716 assertf(((c_size <= max_csize_adj) && (c_size >= -1)),
4717 "c_size invalid (%d, %d), cur compressions: %d", c_size, max_csize_adj, c_segment_pages_compressed);
4718
4719 if (c_size == -1) {
4720 if (max_csize < PAGE_SIZE) {
4721 c_current_seg_filled(c_seg, current_chead);
4722 assert(*current_chead == NULL);
4723
4724 lck_mtx_unlock_always(&c_seg->c_lock);
4725 /* TODO: it may be worth requiring codecs to distinguish
4726 * between incompressible inputs and failures due to
4727 * budget exhaustion.
4728 */
4729 PAGE_REPLACEMENT_DISALLOWED(FALSE);
4730 goto retry;
4731 }
4732 c_size = PAGE_SIZE;
4733
4734 if (incomp_copy == FALSE) {
4735 memcpy(&c_seg->c_store.c_buffer[cs->c_offset], src, c_size);
4736 }
4737
4738 OSAddAtomic(1, &c_segment_noncompressible_pages);
4739 } else if (c_size == 0) {
4740 int hash_index;
4741
4742 /*
4743 * special case - this is a page completely full of a single 32 bit value
4744 */
4745 single_value = true;
4746 hash_index = c_segment_sv_hash_insert(*(uint32_t *)(uintptr_t)src);
4747
4748 if (hash_index != -1) {
4749 slot_ptr->s_cindx = hash_index;
4750 slot_ptr->s_cseg = C_SV_CSEG_ID;
4751
4752 OSAddAtomic(1, &c_segment_svp_hash_succeeded);
4753 #if RECORD_THE_COMPRESSED_DATA
4754 c_compressed_record_data(src, 4);
4755 #endif
4756 goto sv_compression;
4757 }
4758 c_size = 4;
4759
4760 memcpy(&c_seg->c_store.c_buffer[cs->c_offset], src, c_size);
4761
4762 OSAddAtomic(1, &c_segment_svp_hash_failed);
4763 }
4764
4765 #if RECORD_THE_COMPRESSED_DATA
4766 c_compressed_record_data((char *)&c_seg->c_store.c_buffer[cs->c_offset], c_size);
4767 #endif
4768 #if CHECKSUM_THE_COMPRESSED_DATA
4769 cs->c_hash_compressed_data = vmc_hash((char *)&c_seg->c_store.c_buffer[cs->c_offset], c_size);
4770 #endif
4771 #if POPCOUNT_THE_COMPRESSED_DATA
4772 cs->c_pop_cdata = vmc_pop((uintptr_t) &c_seg->c_store.c_buffer[cs->c_offset], c_size);
4773 #endif
4774 c_rounded_size = (c_size + C_SEG_OFFSET_ALIGNMENT_MASK) & ~C_SEG_OFFSET_ALIGNMENT_MASK;
4775
4776 PACK_C_SIZE(cs, c_size);
4777 c_seg->c_bytes_used += c_rounded_size;
4778 c_seg->c_nextoffset += C_SEG_BYTES_TO_OFFSET(c_rounded_size);
4779 c_seg->c_slots_used++;
4780
4781 #if CONFIG_FREEZE
4782 /* TODO: should c_segment_pages_compressed be up here too? See 88598046 for details */
4783 OSAddAtomic(1, &c_segment_pages_compressed_incore);
4784 if (c_seg->c_has_donated_pages) {
4785 OSAddAtomic(1, &c_segment_pages_compressed_incore_late_swapout);
4786 }
4787 #endif /* CONFIG_FREEZE */
4788
4789 slot_ptr->s_cindx = c_seg->c_nextslot++;
4790 /* <csegno=0,indx=0> would mean "empty slot", so use csegno+1 */
4791 slot_ptr->s_cseg = c_seg->c_mysegno + 1;
4792
4793 sv_compression:
4794 if (c_seg->c_nextoffset >= c_seg_off_limit || c_seg->c_nextslot >= C_SLOT_MAX_INDEX) {
4795 c_current_seg_filled(c_seg, current_chead);
4796 assert(*current_chead == NULL);
4797 }
4798
4799 lck_mtx_unlock_always(&c_seg->c_lock);
4800
4801 PAGE_REPLACEMENT_DISALLOWED(FALSE);
4802
4803 #if RECORD_THE_COMPRESSED_DATA
4804 if ((c_compressed_record_cptr - c_compressed_record_sbuf) >= c_seg_allocsize) {
4805 c_compressed_record_write(c_compressed_record_sbuf, (int)(c_compressed_record_cptr - c_compressed_record_sbuf));
4806 c_compressed_record_cptr = c_compressed_record_sbuf;
4807 }
4808 #endif
4809 if (c_size) {
4810 OSAddAtomic64(c_size, &c_segment_compressed_bytes);
4811 OSAddAtomic64(c_rounded_size, &compressor_bytes_used);
4812 }
4813 OSAddAtomic64(PAGE_SIZE, &c_segment_input_bytes);
4814
4815 OSAddAtomic(1, &c_segment_pages_compressed);
4816 #if DEVELOPMENT || DEBUG
4817 if (!compressor_running_perf_test) {
4818 /*
4819 * The perf_compressor benchmark should not be able to trigger
4820 * compressor thrashing jetsams.
4821 */
4822 OSAddAtomic(1, &sample_period_compression_count);
4823 }
4824 #else /* DEVELOPMENT || DEBUG */
4825 OSAddAtomic(1, &sample_period_compression_count);
4826 #endif /* DEVELOPMENT || DEBUG */
4827
4828 KERNEL_DEBUG(0xe0400000 | DBG_FUNC_END, *current_chead, c_size, c_segment_input_bytes, c_segment_compressed_bytes, 0);
4829
4830 return 0;
4831 }
4832
4833 static inline void
sv_decompress(int32_t * ddst,int32_t pattern)4834 sv_decompress(int32_t *ddst, int32_t pattern)
4835 {
4836 // assert(__builtin_constant_p(PAGE_SIZE) != 0);
4837 #if defined(__x86_64__)
4838 memset_word(ddst, pattern, PAGE_SIZE / sizeof(int32_t));
4839 #elif defined(__arm64__)
4840 assert((PAGE_SIZE % 128) == 0);
4841 if (pattern == 0) {
4842 fill32_dczva((addr64_t)ddst, PAGE_SIZE);
4843 } else {
4844 fill32_nt((addr64_t)ddst, PAGE_SIZE, pattern);
4845 }
4846 #else
4847 size_t i;
4848
4849 /* Unroll the pattern fill loop 4x to encourage the
4850 * compiler to emit NEON stores, cf.
4851 * <rdar://problem/25839866> Loop autovectorization
4852 * anomalies.
4853 */
4854 /* * We use separate loops for each PAGE_SIZE
4855 * to allow the autovectorizer to engage, as PAGE_SIZE
4856 * may not be a constant.
4857 */
4858
4859 __unreachable_ok_push
4860 if (PAGE_SIZE == 4096) {
4861 for (i = 0; i < (4096U / sizeof(int32_t)); i += 4) {
4862 *ddst++ = pattern;
4863 *ddst++ = pattern;
4864 *ddst++ = pattern;
4865 *ddst++ = pattern;
4866 }
4867 } else {
4868 assert(PAGE_SIZE == 16384);
4869 for (i = 0; i < (int)(16384U / sizeof(int32_t)); i += 4) {
4870 *ddst++ = pattern;
4871 *ddst++ = pattern;
4872 *ddst++ = pattern;
4873 *ddst++ = pattern;
4874 }
4875 }
4876 __unreachable_ok_pop
4877 #endif
4878 }
4879
4880 static int
c_decompress_page(char * dst,volatile c_slot_mapping_t slot_ptr,int flags,int * zeroslot)4881 c_decompress_page(char *dst, volatile c_slot_mapping_t slot_ptr, int flags, int *zeroslot)
4882 {
4883 c_slot_t cs;
4884 c_segment_t c_seg;
4885 uint32_t c_segno;
4886 uint16_t c_indx;
4887 int c_rounded_size;
4888 uint32_t c_size;
4889 int retval = 0;
4890 boolean_t need_unlock = TRUE;
4891 boolean_t consider_defragmenting = FALSE;
4892 boolean_t kdp_mode = FALSE;
4893
4894 if (__improbable(flags & C_KDP)) {
4895 if (not_in_kdp) {
4896 panic("C_KDP passed to decompress page from outside of debugger context");
4897 }
4898
4899 assert((flags & C_KEEP) == C_KEEP);
4900 assert((flags & C_DONT_BLOCK) == C_DONT_BLOCK);
4901
4902 if ((flags & (C_DONT_BLOCK | C_KEEP)) != (C_DONT_BLOCK | C_KEEP)) {
4903 return -2;
4904 }
4905
4906 kdp_mode = TRUE;
4907 *zeroslot = 0;
4908 }
4909
4910 ReTry:
4911 if (__probable(!kdp_mode)) {
4912 PAGE_REPLACEMENT_DISALLOWED(TRUE);
4913 } else {
4914 if (kdp_lck_rw_lock_is_acquired_exclusive(&c_master_lock)) {
4915 return -2;
4916 }
4917 }
4918
4919 #if HIBERNATION
4920 /*
4921 * if hibernation is enabled, it indicates (via a call
4922 * to 'vm_decompressor_lock' that no further
4923 * decompressions are allowed once it reaches
4924 * the point of flushing all of the currently dirty
4925 * anonymous memory through the compressor and out
4926 * to disk... in this state we allow freeing of compressed
4927 * pages and must honor the C_DONT_BLOCK case
4928 */
4929 if (__improbable(dst && decompressions_blocked == TRUE)) {
4930 if (flags & C_DONT_BLOCK) {
4931 if (__probable(!kdp_mode)) {
4932 PAGE_REPLACEMENT_DISALLOWED(FALSE);
4933 }
4934
4935 *zeroslot = 0;
4936 return -2;
4937 }
4938 /*
4939 * it's safe to atomically assert and block behind the
4940 * lock held in shared mode because "decompressions_blocked" is
4941 * only set and cleared and the thread_wakeup done when the lock
4942 * is held exclusively
4943 */
4944 assert_wait((event_t)&decompressions_blocked, THREAD_UNINT);
4945
4946 PAGE_REPLACEMENT_DISALLOWED(FALSE);
4947
4948 thread_block(THREAD_CONTINUE_NULL);
4949
4950 goto ReTry;
4951 }
4952 #endif
4953 /* s_cseg is actually "segno+1" */
4954 c_segno = slot_ptr->s_cseg - 1;
4955
4956 if (__improbable(c_segno >= c_segments_available)) {
4957 panic("c_decompress_page: c_segno %d >= c_segments_available %d, slot_ptr(%p), slot_data(%x)",
4958 c_segno, c_segments_available, slot_ptr, *(int *)((void *)slot_ptr));
4959 }
4960
4961 if (__improbable(c_segments[c_segno].c_segno < c_segments_available)) {
4962 panic("c_decompress_page: c_segno %d is free, slot_ptr(%p), slot_data(%x)",
4963 c_segno, slot_ptr, *(int *)((void *)slot_ptr));
4964 }
4965
4966 c_seg = c_segments[c_segno].c_seg;
4967
4968 if (__probable(!kdp_mode)) {
4969 lck_mtx_lock_spin_always(&c_seg->c_lock);
4970 } else {
4971 if (kdp_lck_mtx_lock_spin_is_acquired(&c_seg->c_lock)) {
4972 return -2;
4973 }
4974 }
4975
4976 assert(c_seg->c_state != C_IS_EMPTY && c_seg->c_state != C_IS_FREE);
4977
4978 if (dst == NULL && c_seg->c_busy_swapping) {
4979 assert(c_seg->c_busy);
4980
4981 goto bypass_busy_check;
4982 }
4983 if (flags & C_DONT_BLOCK) {
4984 if (c_seg->c_busy || (C_SEG_IS_ONDISK(c_seg) && dst)) {
4985 *zeroslot = 0;
4986
4987 retval = -2;
4988 goto done;
4989 }
4990 }
4991 if (c_seg->c_busy) {
4992 PAGE_REPLACEMENT_DISALLOWED(FALSE);
4993
4994 c_seg_wait_on_busy(c_seg);
4995
4996 goto ReTry;
4997 }
4998 bypass_busy_check:
4999
5000 c_indx = slot_ptr->s_cindx;
5001
5002 if (__improbable(c_indx >= c_seg->c_nextslot)) {
5003 panic("c_decompress_page: c_indx %d >= c_nextslot %d, c_seg(%p), slot_ptr(%p), slot_data(%x)",
5004 c_indx, c_seg->c_nextslot, c_seg, slot_ptr, *(int *)((void *)slot_ptr));
5005 }
5006
5007 cs = C_SEG_SLOT_FROM_INDEX(c_seg, c_indx);
5008
5009 c_size = UNPACK_C_SIZE(cs);
5010
5011 if (__improbable(c_size == 0)) {
5012 panic("c_decompress_page: c_size == 0, c_seg(%p), slot_ptr(%p), slot_data(%x)",
5013 c_seg, slot_ptr, *(int *)((void *)slot_ptr));
5014 }
5015
5016 c_rounded_size = (c_size + C_SEG_OFFSET_ALIGNMENT_MASK) & ~C_SEG_OFFSET_ALIGNMENT_MASK;
5017
5018 if (dst) {
5019 uint32_t age_of_cseg;
5020 clock_sec_t cur_ts_sec;
5021 clock_nsec_t cur_ts_nsec;
5022
5023 if (C_SEG_IS_ONDISK(c_seg)) {
5024 #if CONFIG_FREEZE
5025 if (freezer_incore_cseg_acct) {
5026 if ((c_seg->c_slots_used + c_segment_pages_compressed_incore) >= c_segment_pages_compressed_nearing_limit) {
5027 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5028 lck_mtx_unlock_always(&c_seg->c_lock);
5029
5030 memorystatus_kill_on_VM_compressor_space_shortage(FALSE /* async */);
5031
5032 goto ReTry;
5033 }
5034
5035 uint32_t incore_seg_count = c_segment_count - c_swappedout_count - c_swappedout_sparse_count;
5036 if ((incore_seg_count + 1) >= c_segments_nearing_limit) {
5037 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5038 lck_mtx_unlock_always(&c_seg->c_lock);
5039
5040 memorystatus_kill_on_VM_compressor_space_shortage(FALSE /* async */);
5041
5042 goto ReTry;
5043 }
5044 }
5045 #endif /* CONFIG_FREEZE */
5046 assert(kdp_mode == FALSE);
5047 retval = c_seg_swapin(c_seg, FALSE, TRUE);
5048 assert(retval == 0);
5049
5050 retval = 1;
5051 }
5052 if (c_seg->c_state == C_ON_BAD_Q) {
5053 assert(c_seg->c_store.c_buffer == NULL);
5054 *zeroslot = 0;
5055
5056 retval = -1;
5057 goto done;
5058 }
5059
5060 #if POPCOUNT_THE_COMPRESSED_DATA
5061 unsigned csvpop;
5062 uintptr_t csvaddr = (uintptr_t) &c_seg->c_store.c_buffer[cs->c_offset];
5063 if (cs->c_pop_cdata != (csvpop = vmc_pop(csvaddr, c_size))) {
5064 panic("Compressed data popcount doesn't match original, bit distance: %d %p (phys: %p) %p %p 0x%x 0x%x 0x%x 0x%x", (csvpop - cs->c_pop_cdata), (void *)csvaddr, (void *) kvtophys(csvaddr), c_seg, cs, cs->c_offset, c_size, csvpop, cs->c_pop_cdata);
5065 }
5066 #endif
5067
5068 #if CHECKSUM_THE_COMPRESSED_DATA
5069 unsigned csvhash;
5070 if (cs->c_hash_compressed_data != (csvhash = vmc_hash((char *)&c_seg->c_store.c_buffer[cs->c_offset], c_size))) {
5071 panic("Compressed data doesn't match original %p %p %u %u %u", c_seg, cs, c_size, cs->c_hash_compressed_data, csvhash);
5072 }
5073 #endif
5074 if (c_rounded_size == PAGE_SIZE) {
5075 /*
5076 * page wasn't compressible... just copy it out
5077 */
5078 memcpy(dst, &c_seg->c_store.c_buffer[cs->c_offset], PAGE_SIZE);
5079 } else if (c_size == 4) {
5080 int32_t data;
5081 int32_t *dptr;
5082
5083 /*
5084 * page was populated with a single value
5085 * that didn't fit into our fast hash
5086 * so we packed it in as a single non-compressed value
5087 * that we need to populate the page with
5088 */
5089 dptr = (int32_t *)(uintptr_t)dst;
5090 data = *(int32_t *)(&c_seg->c_store.c_buffer[cs->c_offset]);
5091 sv_decompress(dptr, data);
5092 } else {
5093 uint32_t my_cpu_no;
5094 char *scratch_buf;
5095
5096 if (__probable(!kdp_mode)) {
5097 /*
5098 * we're behind the c_seg lock held in spin mode
5099 * which means pre-emption is disabled... therefore
5100 * the following sequence is atomic and safe
5101 */
5102 my_cpu_no = cpu_number();
5103
5104 assert(my_cpu_no < compressor_cpus);
5105
5106 scratch_buf = &compressor_scratch_bufs[my_cpu_no * vm_compressor_get_decode_scratch_size()];
5107 } else {
5108 scratch_buf = kdp_compressor_scratch_buf;
5109 }
5110
5111 if (vm_compressor_algorithm() != VM_COMPRESSOR_DEFAULT_CODEC) {
5112 #if defined(__arm64__)
5113 uint16_t c_codec = cs->c_codec;
5114 uint32_t inline_popcount;
5115 if (!metadecompressor((const uint8_t *) &c_seg->c_store.c_buffer[cs->c_offset],
5116 (uint8_t *)dst, c_size, c_codec, (void *)scratch_buf, &inline_popcount)) {
5117 retval = -1;
5118 } else {
5119 assert(inline_popcount == C_SLOT_NO_POPCOUNT);
5120 }
5121 #endif
5122 } else {
5123 #if defined(__arm64__)
5124 __unreachable_ok_push
5125 if (PAGE_SIZE == 4096) {
5126 WKdm_decompress_4k((WK_word *)(uintptr_t)&c_seg->c_store.c_buffer[cs->c_offset],
5127 (WK_word *)(uintptr_t)dst, (WK_word *)(uintptr_t)scratch_buf, c_size);
5128 } else {
5129 WKdm_decompress_16k((WK_word *)(uintptr_t)&c_seg->c_store.c_buffer[cs->c_offset],
5130 (WK_word *)(uintptr_t)dst, (WK_word *)(uintptr_t)scratch_buf, c_size);
5131 }
5132 __unreachable_ok_pop
5133 #else
5134 WKdm_decompress_new((WK_word *)(uintptr_t)&c_seg->c_store.c_buffer[cs->c_offset],
5135 (WK_word *)(uintptr_t)dst, (WK_word *)(uintptr_t)scratch_buf, c_size);
5136 #endif
5137 }
5138 }
5139
5140 #if CHECKSUM_THE_DATA
5141 if (cs->c_hash_data != vmc_hash(dst, PAGE_SIZE)) {
5142 #if defined(__arm64__)
5143 int32_t *dinput = &c_seg->c_store.c_buffer[cs->c_offset];
5144 panic("decompressed data doesn't match original cs: %p, hash: 0x%x, offset: %d, c_size: %d, c_rounded_size: %d, codec: %d, header: 0x%x 0x%x 0x%x", cs, cs->c_hash_data, cs->c_offset, c_size, c_rounded_size, cs->c_codec, *dinput, *(dinput + 1), *(dinput + 2));
5145 #else
5146 panic("decompressed data doesn't match original cs: %p, hash: %d, offset: 0x%x, c_size: %d", cs, cs->c_hash_data, cs->c_offset, c_size);
5147 #endif
5148 }
5149 #endif
5150 if (c_seg->c_swappedin_ts == 0 && !kdp_mode) {
5151 clock_get_system_nanotime(&cur_ts_sec, &cur_ts_nsec);
5152
5153 age_of_cseg = (uint32_t)cur_ts_sec - c_seg->c_creation_ts;
5154 if (age_of_cseg < DECOMPRESSION_SAMPLE_MAX_AGE) {
5155 OSAddAtomic(1, &age_of_decompressions_during_sample_period[age_of_cseg]);
5156 } else {
5157 OSAddAtomic(1, &overage_decompressions_during_sample_period);
5158 }
5159
5160 OSAddAtomic(1, &sample_period_decompression_count);
5161 }
5162 }
5163 #if CONFIG_FREEZE
5164 else {
5165 /*
5166 * We are freeing an uncompressed page from this c_seg and so balance the ledgers.
5167 */
5168 if (C_SEG_IS_ONDISK(c_seg)) {
5169 /*
5170 * The compression sweep feature will push out anonymous pages to disk
5171 * without going through the freezer path and so those c_segs, while
5172 * swapped out, won't have an owner.
5173 */
5174 if (c_seg->c_task_owner) {
5175 task_update_frozen_to_swap_acct(c_seg->c_task_owner, PAGE_SIZE_64, DEBIT_FROM_SWAP);
5176 }
5177
5178 /*
5179 * We are freeing a page in swap without swapping it in. We bump the in-core
5180 * count here to simulate a swapin of a page so that we can accurately
5181 * decrement it below.
5182 */
5183 OSAddAtomic(1, &c_segment_pages_compressed_incore);
5184 if (c_seg->c_has_donated_pages) {
5185 OSAddAtomic(1, &c_segment_pages_compressed_incore_late_swapout);
5186 }
5187 } else if (c_seg->c_state == C_ON_BAD_Q) {
5188 assert(c_seg->c_store.c_buffer == NULL);
5189 *zeroslot = 0;
5190
5191 retval = -1;
5192 goto done;
5193 }
5194 }
5195 #endif /* CONFIG_FREEZE */
5196
5197 if (flags & C_KEEP) {
5198 *zeroslot = 0;
5199 goto done;
5200 }
5201 assert(kdp_mode == FALSE);
5202
5203 c_seg->c_bytes_unused += c_rounded_size;
5204 c_seg->c_bytes_used -= c_rounded_size;
5205
5206 assert(c_seg->c_slots_used);
5207 c_seg->c_slots_used--;
5208 if (dst && c_seg->c_swappedin) {
5209 task_t task = current_task();
5210 if (task) {
5211 ledger_credit(task->ledger, task_ledgers.swapins, PAGE_SIZE);
5212 }
5213 }
5214
5215 PACK_C_SIZE(cs, 0);
5216
5217 if (c_indx < c_seg->c_firstemptyslot) {
5218 c_seg->c_firstemptyslot = c_indx;
5219 }
5220
5221 OSAddAtomic(-1, &c_segment_pages_compressed);
5222 #if CONFIG_FREEZE
5223 OSAddAtomic(-1, &c_segment_pages_compressed_incore);
5224 assertf(c_segment_pages_compressed_incore >= 0, "-ve incore count %p 0x%x", c_seg, c_segment_pages_compressed_incore);
5225 if (c_seg->c_has_donated_pages) {
5226 OSAddAtomic(-1, &c_segment_pages_compressed_incore_late_swapout);
5227 assertf(c_segment_pages_compressed_incore_late_swapout >= 0, "-ve lateswapout count %p 0x%x", c_seg, c_segment_pages_compressed_incore_late_swapout);
5228 }
5229 #endif /* CONFIG_FREEZE */
5230
5231 if (c_seg->c_state != C_ON_BAD_Q && !(C_SEG_IS_ONDISK(c_seg))) {
5232 /*
5233 * C_SEG_IS_ONDISK == TRUE can occur when we're doing a
5234 * free of a compressed page (i.e. dst == NULL)
5235 */
5236 OSAddAtomic64(-c_rounded_size, &compressor_bytes_used);
5237 }
5238 if (c_seg->c_busy_swapping) {
5239 /*
5240 * bypass case for c_busy_swapping...
5241 * let the swapin/swapout paths deal with putting
5242 * the c_seg on the minor compaction queue if needed
5243 */
5244 assert(c_seg->c_busy);
5245 goto done;
5246 }
5247 assert(!c_seg->c_busy);
5248
5249 if (c_seg->c_state != C_IS_FILLING) {
5250 if (c_seg->c_bytes_used == 0) {
5251 if (!(C_SEG_IS_ONDISK(c_seg))) {
5252 int pages_populated;
5253
5254 pages_populated = (round_page_32(C_SEG_OFFSET_TO_BYTES(c_seg->c_populated_offset))) / PAGE_SIZE;
5255 c_seg->c_populated_offset = C_SEG_BYTES_TO_OFFSET(0);
5256
5257 if (pages_populated) {
5258 assert(c_seg->c_state != C_ON_BAD_Q);
5259 assert(c_seg->c_store.c_buffer != NULL);
5260
5261 C_SEG_BUSY(c_seg);
5262 lck_mtx_unlock_always(&c_seg->c_lock);
5263
5264 kernel_memory_depopulate(
5265 (vm_offset_t) c_seg->c_store.c_buffer,
5266 ptoa(pages_populated),
5267 KMA_COMPRESSOR, VM_KERN_MEMORY_COMPRESSOR);
5268
5269 lck_mtx_lock_spin_always(&c_seg->c_lock);
5270 C_SEG_WAKEUP_DONE(c_seg);
5271 }
5272 if (!c_seg->c_on_minorcompact_q && c_seg->c_state != C_ON_SWAPIO_Q) {
5273 if (c_seg->c_state == C_ON_SWAPOUT_Q) {
5274 bool clear_busy = false;
5275 if (!lck_mtx_try_lock_spin_always(c_list_lock)) {
5276 C_SEG_BUSY(c_seg);
5277
5278 lck_mtx_unlock_always(&c_seg->c_lock);
5279 lck_mtx_lock_spin_always(c_list_lock);
5280 lck_mtx_lock_spin_always(&c_seg->c_lock);
5281 clear_busy = true;
5282 }
5283 c_seg_switch_state(c_seg, C_ON_AGE_Q, FALSE);
5284 if (clear_busy) {
5285 C_SEG_WAKEUP_DONE(c_seg);
5286 clear_busy = false;
5287 }
5288 lck_mtx_unlock_always(c_list_lock);
5289 }
5290 c_seg_need_delayed_compaction(c_seg, FALSE);
5291 }
5292 } else {
5293 if (c_seg->c_state != C_ON_SWAPPEDOUTSPARSE_Q) {
5294 c_seg_move_to_sparse_list(c_seg);
5295 consider_defragmenting = TRUE;
5296 }
5297 }
5298 } else if (c_seg->c_on_minorcompact_q) {
5299 assert(c_seg->c_state != C_ON_BAD_Q);
5300 assert(!C_SEG_IS_ON_DISK_OR_SOQ(c_seg));
5301
5302 if (C_SEG_SHOULD_MINORCOMPACT_NOW(c_seg)) {
5303 c_seg_try_minor_compaction_and_unlock(c_seg);
5304 need_unlock = FALSE;
5305 }
5306 } else if (!(C_SEG_IS_ONDISK(c_seg))) {
5307 if (c_seg->c_state != C_ON_BAD_Q && c_seg->c_state != C_ON_SWAPOUT_Q && c_seg->c_state != C_ON_SWAPIO_Q &&
5308 C_SEG_UNUSED_BYTES(c_seg) >= PAGE_SIZE) {
5309 c_seg_need_delayed_compaction(c_seg, FALSE);
5310 }
5311 } else if (c_seg->c_state != C_ON_SWAPPEDOUTSPARSE_Q && C_SEG_ONDISK_IS_SPARSE(c_seg)) {
5312 c_seg_move_to_sparse_list(c_seg);
5313 consider_defragmenting = TRUE;
5314 }
5315 }
5316 done:
5317 if (__improbable(kdp_mode)) {
5318 return retval;
5319 }
5320
5321 if (need_unlock == TRUE) {
5322 lck_mtx_unlock_always(&c_seg->c_lock);
5323 }
5324
5325 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5326
5327 if (consider_defragmenting == TRUE) {
5328 vm_swap_consider_defragmenting(VM_SWAP_FLAGS_NONE);
5329 }
5330
5331 #if !XNU_TARGET_OS_OSX
5332 if ((c_minor_count && COMPRESSOR_NEEDS_TO_MINOR_COMPACT()) || vm_compressor_needs_to_major_compact()) {
5333 vm_wake_compactor_swapper();
5334 }
5335 #endif /* !XNU_TARGET_OS_OSX */
5336
5337 return retval;
5338 }
5339
5340
5341 int
vm_compressor_get(ppnum_t pn,int * slot,int flags)5342 vm_compressor_get(ppnum_t pn, int *slot, int flags)
5343 {
5344 c_slot_mapping_t slot_ptr;
5345 char *dst;
5346 int zeroslot = 1;
5347 int retval;
5348
5349 dst = pmap_map_compressor_page(pn);
5350 slot_ptr = (c_slot_mapping_t)slot;
5351
5352 assert(dst != NULL);
5353
5354 if (slot_ptr->s_cseg == C_SV_CSEG_ID) {
5355 int32_t data;
5356 int32_t *dptr;
5357
5358 /*
5359 * page was populated with a single value
5360 * that found a home in our hash table
5361 * grab that value from the hash and populate the page
5362 * that we need to populate the page with
5363 */
5364 dptr = (int32_t *)(uintptr_t)dst;
5365 data = c_segment_sv_hash_table[slot_ptr->s_cindx].he_data;
5366 sv_decompress(dptr, data);
5367 if (!(flags & C_KEEP)) {
5368 c_segment_sv_hash_drop_ref(slot_ptr->s_cindx);
5369
5370 OSAddAtomic(-1, &c_segment_pages_compressed);
5371 *slot = 0;
5372 }
5373 if (data) {
5374 OSAddAtomic(1, &c_segment_svp_nonzero_decompressions);
5375 } else {
5376 OSAddAtomic(1, &c_segment_svp_zero_decompressions);
5377 }
5378
5379 pmap_unmap_compressor_page(pn, dst);
5380 return 0;
5381 }
5382
5383 retval = c_decompress_page(dst, slot_ptr, flags, &zeroslot);
5384
5385 /*
5386 * zeroslot will be set to 0 by c_decompress_page if (flags & C_KEEP)
5387 * or (flags & C_DONT_BLOCK) and we found 'c_busy' or 'C_SEG_IS_ONDISK' to be TRUE
5388 */
5389 if (zeroslot) {
5390 *slot = 0;
5391 }
5392
5393 pmap_unmap_compressor_page(pn, dst);
5394
5395 /*
5396 * returns 0 if we successfully decompressed a page from a segment already in memory
5397 * returns 1 if we had to first swap in the segment, before successfully decompressing the page
5398 * returns -1 if we encountered an error swapping in the segment - decompression failed
5399 * returns -2 if (flags & C_DONT_BLOCK) and we found 'c_busy' or 'C_SEG_IS_ONDISK' to be true
5400 */
5401 return retval;
5402 }
5403
5404 #if DEVELOPMENT || DEBUG
5405
5406 void
vm_compressor_inject_error(int * slot)5407 vm_compressor_inject_error(int *slot)
5408 {
5409 c_slot_mapping_t slot_ptr = (c_slot_mapping_t)slot;
5410
5411 /* No error detection for single-value compression. */
5412 if (slot_ptr->s_cseg == C_SV_CSEG_ID) {
5413 printf("%s(): cannot inject errors in SV-compressed pages\n", __func__ );
5414 return;
5415 }
5416
5417 /* s_cseg is actually "segno+1" */
5418 const uint32_t c_segno = slot_ptr->s_cseg - 1;
5419
5420 assert(c_segno < c_segments_available);
5421 assert(c_segments[c_segno].c_segno >= c_segments_available);
5422
5423 const c_segment_t c_seg = c_segments[c_segno].c_seg;
5424
5425 PAGE_REPLACEMENT_DISALLOWED(TRUE);
5426
5427 lck_mtx_lock_spin_always(&c_seg->c_lock);
5428 assert(c_seg->c_state != C_IS_EMPTY && c_seg->c_state != C_IS_FREE);
5429
5430 const uint16_t c_indx = slot_ptr->s_cindx;
5431 assert(c_indx < c_seg->c_nextslot);
5432
5433 /*
5434 * To safely make this segment temporarily writable, we need to mark
5435 * the segment busy, which allows us to release the segment lock.
5436 */
5437 while (c_seg->c_busy) {
5438 c_seg_wait_on_busy(c_seg);
5439 lck_mtx_lock_spin_always(&c_seg->c_lock);
5440 }
5441 C_SEG_BUSY(c_seg);
5442
5443 bool already_writable = (c_seg->c_state == C_IS_FILLING);
5444 if (!already_writable) {
5445 /*
5446 * Protection update must be performed preemptibly, so temporarily drop
5447 * the lock. Having set c_busy will prevent most other concurrent
5448 * operations.
5449 */
5450 lck_mtx_unlock_always(&c_seg->c_lock);
5451 C_SEG_MAKE_WRITEABLE(c_seg);
5452 lck_mtx_lock_spin_always(&c_seg->c_lock);
5453 }
5454
5455 /*
5456 * Once we've released the lock following our c_state == C_IS_FILLING check,
5457 * c_current_seg_filled() can (re-)write-protect the segment. However, it
5458 * will transition from C_IS_FILLING before releasing the c_seg lock, so we
5459 * can detect this by re-checking after we've reobtained the lock.
5460 */
5461 if (already_writable && c_seg->c_state != C_IS_FILLING) {
5462 lck_mtx_unlock_always(&c_seg->c_lock);
5463 C_SEG_MAKE_WRITEABLE(c_seg);
5464 lck_mtx_lock_spin_always(&c_seg->c_lock);
5465 already_writable = false;
5466 /* Segment can't be freed while c_busy is set. */
5467 assert(c_seg->c_state != C_IS_FILLING);
5468 }
5469
5470 /*
5471 * Skip if the segment is on disk. This check can only be performed after
5472 * the final acquisition of the segment lock before we attempt to write to
5473 * the segment.
5474 */
5475 if (!C_SEG_IS_ON_DISK_OR_SOQ(c_seg)) {
5476 c_slot_t cs = C_SEG_SLOT_FROM_INDEX(c_seg, c_indx);
5477 int32_t *data = &c_seg->c_store.c_buffer[cs->c_offset];
5478 /* assume that the compressed data holds at least one int32_t */
5479 assert(UNPACK_C_SIZE(cs) > sizeof(*data));
5480 /*
5481 * This bit is known to be in the payload of a MISS packet resulting from
5482 * the pattern used in the test pattern from decompression_failure.c.
5483 * Flipping it should result in many corrupted bits in the test page.
5484 */
5485 data[0] ^= 0x00000100;
5486 }
5487
5488 if (!already_writable) {
5489 lck_mtx_unlock_always(&c_seg->c_lock);
5490 C_SEG_WRITE_PROTECT(c_seg);
5491 lck_mtx_lock_spin_always(&c_seg->c_lock);
5492 }
5493
5494 C_SEG_WAKEUP_DONE(c_seg);
5495 lck_mtx_unlock_always(&c_seg->c_lock);
5496
5497 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5498 }
5499
5500 #endif /* DEVELOPMENT || DEBUG */
5501
5502 int
vm_compressor_free(int * slot,int flags)5503 vm_compressor_free(int *slot, int flags)
5504 {
5505 c_slot_mapping_t slot_ptr;
5506 int zeroslot = 1;
5507 int retval;
5508
5509 assert(flags == 0 || flags == C_DONT_BLOCK);
5510
5511 slot_ptr = (c_slot_mapping_t)slot;
5512
5513 if (slot_ptr->s_cseg == C_SV_CSEG_ID) {
5514 c_segment_sv_hash_drop_ref(slot_ptr->s_cindx);
5515 OSAddAtomic(-1, &c_segment_pages_compressed);
5516
5517 *slot = 0;
5518 return 0;
5519 }
5520 retval = c_decompress_page(NULL, slot_ptr, flags, &zeroslot);
5521 /*
5522 * returns 0 if we successfully freed the specified compressed page
5523 * returns -1 if we encountered an error swapping in the segment - decompression failed
5524 * returns -2 if (flags & C_DONT_BLOCK) and we found 'c_busy' set
5525 */
5526
5527 if (retval == 0) {
5528 *slot = 0;
5529 }
5530
5531 return retval;
5532 }
5533
5534
5535 int
vm_compressor_put(ppnum_t pn,int * slot,void ** current_chead,char * scratch_buf)5536 vm_compressor_put(ppnum_t pn, int *slot, void **current_chead, char *scratch_buf)
5537 {
5538 char *src;
5539 int retval;
5540
5541 src = pmap_map_compressor_page(pn);
5542 assert(src != NULL);
5543
5544 retval = c_compress_page(src, (c_slot_mapping_t)slot, (c_segment_t *)current_chead, scratch_buf);
5545 pmap_unmap_compressor_page(pn, src);
5546
5547 return retval;
5548 }
5549
5550 void
vm_compressor_transfer(int * dst_slot_p,int * src_slot_p)5551 vm_compressor_transfer(
5552 int *dst_slot_p,
5553 int *src_slot_p)
5554 {
5555 c_slot_mapping_t dst_slot, src_slot;
5556 c_segment_t c_seg;
5557 uint16_t c_indx;
5558 c_slot_t cs;
5559
5560 src_slot = (c_slot_mapping_t) src_slot_p;
5561
5562 if (src_slot->s_cseg == C_SV_CSEG_ID) {
5563 *dst_slot_p = *src_slot_p;
5564 *src_slot_p = 0;
5565 return;
5566 }
5567 dst_slot = (c_slot_mapping_t) dst_slot_p;
5568 Retry:
5569 PAGE_REPLACEMENT_DISALLOWED(TRUE);
5570 /* get segment for src_slot */
5571 c_seg = c_segments[src_slot->s_cseg - 1].c_seg;
5572 /* lock segment */
5573 lck_mtx_lock_spin_always(&c_seg->c_lock);
5574 /* wait if it's busy */
5575 if (c_seg->c_busy && !c_seg->c_busy_swapping) {
5576 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5577 c_seg_wait_on_busy(c_seg);
5578 goto Retry;
5579 }
5580 /* find the c_slot */
5581 c_indx = src_slot->s_cindx;
5582 cs = C_SEG_SLOT_FROM_INDEX(c_seg, c_indx);
5583 /* point the c_slot back to dst_slot instead of src_slot */
5584 C_SLOT_ASSERT_PACKABLE(dst_slot);
5585 cs->c_packed_ptr = C_SLOT_PACK_PTR(dst_slot);
5586 /* transfer */
5587 *dst_slot_p = *src_slot_p;
5588 *src_slot_p = 0;
5589 lck_mtx_unlock_always(&c_seg->c_lock);
5590 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5591 }
5592
5593 #if defined(__arm64__)
5594 extern clock_sec_t vm_swapfile_last_failed_to_create_ts;
5595 __attribute__((noreturn))
5596 void
vm_panic_hibernate_write_image_failed(int err)5597 vm_panic_hibernate_write_image_failed(int err)
5598 {
5599 panic("hibernate_write_image encountered error 0x%x - %u, %u, %d, %d, %d, %d, %d, %d, %d, %d, %llu, %d, %d, %d\n",
5600 err,
5601 VM_PAGE_COMPRESSOR_COUNT, vm_page_wire_count,
5602 c_age_count, c_major_count, c_minor_count, (c_early_swapout_count + c_regular_swapout_count + c_late_swapout_count), c_swappedout_sparse_count,
5603 vm_num_swap_files, vm_num_pinned_swap_files, vm_swappin_enabled, vm_swap_put_failures,
5604 (vm_swapfile_last_failed_to_create_ts ? 1:0), hibernate_no_swapspace, hibernate_flush_timed_out);
5605 }
5606 #endif /*(__arm64__)*/
5607
5608 #if CONFIG_FREEZE
5609
5610 int freezer_finished_filling = 0;
5611
5612 void
vm_compressor_finished_filling(void ** current_chead)5613 vm_compressor_finished_filling(
5614 void **current_chead)
5615 {
5616 c_segment_t c_seg;
5617
5618 if ((c_seg = *(c_segment_t *)current_chead) == NULL) {
5619 return;
5620 }
5621
5622 assert(c_seg->c_state == C_IS_FILLING);
5623
5624 lck_mtx_lock_spin_always(&c_seg->c_lock);
5625
5626 c_current_seg_filled(c_seg, (c_segment_t *)current_chead);
5627
5628 lck_mtx_unlock_always(&c_seg->c_lock);
5629
5630 freezer_finished_filling++;
5631 }
5632
5633
5634 /*
5635 * This routine is used to transfer the compressed chunks from
5636 * the c_seg/cindx pointed to by slot_p into a new c_seg headed
5637 * by the current_chead and a new cindx within that c_seg.
5638 *
5639 * Currently, this routine is only used by the "freezer backed by
5640 * compressor with swap" mode to create a series of c_segs that
5641 * only contain compressed data belonging to one task. So, we
5642 * move a task's previously compressed data into a set of new
5643 * c_segs which will also hold the task's yet to be compressed data.
5644 */
5645
5646 kern_return_t
vm_compressor_relocate(void ** current_chead,int * slot_p)5647 vm_compressor_relocate(
5648 void **current_chead,
5649 int *slot_p)
5650 {
5651 c_slot_mapping_t slot_ptr;
5652 c_slot_mapping_t src_slot;
5653 uint32_t c_rounded_size;
5654 uint32_t c_size;
5655 uint16_t dst_slot;
5656 c_slot_t c_dst;
5657 c_slot_t c_src;
5658 uint16_t c_indx;
5659 c_segment_t c_seg_dst = NULL;
5660 c_segment_t c_seg_src = NULL;
5661 kern_return_t kr = KERN_SUCCESS;
5662
5663
5664 src_slot = (c_slot_mapping_t) slot_p;
5665
5666 if (src_slot->s_cseg == C_SV_CSEG_ID) {
5667 /*
5668 * no need to relocate... this is a page full of a single
5669 * value which is hashed to a single entry not contained
5670 * in a c_segment_t
5671 */
5672 return kr;
5673 }
5674
5675 Relookup_dst:
5676 c_seg_dst = c_seg_allocate((c_segment_t *)current_chead);
5677 /*
5678 * returns with c_seg lock held
5679 * and PAGE_REPLACEMENT_DISALLOWED(TRUE)...
5680 * c_nextslot has been allocated and
5681 * c_store.c_buffer populated
5682 */
5683 if (c_seg_dst == NULL) {
5684 /*
5685 * Out of compression segments?
5686 */
5687 kr = KERN_RESOURCE_SHORTAGE;
5688 goto out;
5689 }
5690
5691 assert(c_seg_dst->c_busy == 0);
5692
5693 C_SEG_BUSY(c_seg_dst);
5694
5695 dst_slot = c_seg_dst->c_nextslot;
5696
5697 lck_mtx_unlock_always(&c_seg_dst->c_lock);
5698
5699 Relookup_src:
5700 c_seg_src = c_segments[src_slot->s_cseg - 1].c_seg;
5701
5702 assert(c_seg_dst != c_seg_src);
5703
5704 lck_mtx_lock_spin_always(&c_seg_src->c_lock);
5705
5706 if (C_SEG_IS_ON_DISK_OR_SOQ(c_seg_src) ||
5707 c_seg_src->c_state == C_IS_FILLING) {
5708 /*
5709 * Skip this page if :-
5710 * a) the src c_seg is already on-disk (or on its way there)
5711 * A "thaw" can mark a process as eligible for
5712 * another freeze cycle without bringing any of
5713 * its swapped out c_segs back from disk (because
5714 * that is done on-demand).
5715 * Or, this page may be mapped elsewhere in the task's map,
5716 * and we may have marked it for swap already.
5717 *
5718 * b) Or, the src c_seg is being filled by the compressor
5719 * thread. We don't want the added latency of waiting for
5720 * this c_seg in the freeze path and so we skip it.
5721 */
5722
5723 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5724
5725 lck_mtx_unlock_always(&c_seg_src->c_lock);
5726
5727 c_seg_src = NULL;
5728
5729 goto out;
5730 }
5731
5732 if (c_seg_src->c_busy) {
5733 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5734 c_seg_wait_on_busy(c_seg_src);
5735
5736 c_seg_src = NULL;
5737
5738 PAGE_REPLACEMENT_DISALLOWED(TRUE);
5739
5740 goto Relookup_src;
5741 }
5742
5743 C_SEG_BUSY(c_seg_src);
5744
5745 lck_mtx_unlock_always(&c_seg_src->c_lock);
5746
5747 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5748
5749 /* find the c_slot */
5750 c_indx = src_slot->s_cindx;
5751
5752 c_src = C_SEG_SLOT_FROM_INDEX(c_seg_src, c_indx);
5753
5754 c_size = UNPACK_C_SIZE(c_src);
5755
5756 assert(c_size);
5757
5758 if (c_size > (uint32_t)(c_seg_bufsize - C_SEG_OFFSET_TO_BYTES((int32_t)c_seg_dst->c_nextoffset))) {
5759 /*
5760 * This segment is full. We need a new one.
5761 */
5762
5763 PAGE_REPLACEMENT_DISALLOWED(TRUE);
5764
5765 lck_mtx_lock_spin_always(&c_seg_src->c_lock);
5766 C_SEG_WAKEUP_DONE(c_seg_src);
5767 lck_mtx_unlock_always(&c_seg_src->c_lock);
5768
5769 c_seg_src = NULL;
5770
5771 lck_mtx_lock_spin_always(&c_seg_dst->c_lock);
5772
5773 assert(c_seg_dst->c_busy);
5774 assert(c_seg_dst->c_state == C_IS_FILLING);
5775 assert(!c_seg_dst->c_on_minorcompact_q);
5776
5777 c_current_seg_filled(c_seg_dst, (c_segment_t *)current_chead);
5778 assert(*current_chead == NULL);
5779
5780 C_SEG_WAKEUP_DONE(c_seg_dst);
5781
5782 lck_mtx_unlock_always(&c_seg_dst->c_lock);
5783
5784 c_seg_dst = NULL;
5785
5786 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5787
5788 goto Relookup_dst;
5789 }
5790
5791 c_dst = C_SEG_SLOT_FROM_INDEX(c_seg_dst, c_seg_dst->c_nextslot);
5792
5793 memcpy(&c_seg_dst->c_store.c_buffer[c_seg_dst->c_nextoffset], &c_seg_src->c_store.c_buffer[c_src->c_offset], c_size);
5794 /*
5795 * Is platform alignment actually necessary since wkdm aligns its output?
5796 */
5797 c_rounded_size = (c_size + C_SEG_OFFSET_ALIGNMENT_MASK) & ~C_SEG_OFFSET_ALIGNMENT_MASK;
5798
5799 cslot_copy(c_dst, c_src);
5800 c_dst->c_offset = c_seg_dst->c_nextoffset;
5801
5802 if (c_seg_dst->c_firstemptyslot == c_seg_dst->c_nextslot) {
5803 c_seg_dst->c_firstemptyslot++;
5804 }
5805
5806 c_seg_dst->c_slots_used++;
5807 c_seg_dst->c_nextslot++;
5808 c_seg_dst->c_bytes_used += c_rounded_size;
5809 c_seg_dst->c_nextoffset += C_SEG_BYTES_TO_OFFSET(c_rounded_size);
5810
5811
5812 PACK_C_SIZE(c_src, 0);
5813
5814 c_seg_src->c_bytes_used -= c_rounded_size;
5815 c_seg_src->c_bytes_unused += c_rounded_size;
5816
5817 assert(c_seg_src->c_slots_used);
5818 c_seg_src->c_slots_used--;
5819
5820 if (!c_seg_src->c_swappedin) {
5821 /* Pessimistically lose swappedin status when non-swappedin pages are added. */
5822 c_seg_dst->c_swappedin = false;
5823 }
5824
5825 if (c_indx < c_seg_src->c_firstemptyslot) {
5826 c_seg_src->c_firstemptyslot = c_indx;
5827 }
5828
5829 c_dst = C_SEG_SLOT_FROM_INDEX(c_seg_dst, dst_slot);
5830
5831 PAGE_REPLACEMENT_ALLOWED(TRUE);
5832 slot_ptr = C_SLOT_UNPACK_PTR(c_dst);
5833 /* <csegno=0,indx=0> would mean "empty slot", so use csegno+1 */
5834 slot_ptr->s_cseg = c_seg_dst->c_mysegno + 1;
5835 slot_ptr->s_cindx = dst_slot;
5836
5837 PAGE_REPLACEMENT_ALLOWED(FALSE);
5838
5839 out:
5840 if (c_seg_src) {
5841 lck_mtx_lock_spin_always(&c_seg_src->c_lock);
5842
5843 C_SEG_WAKEUP_DONE(c_seg_src);
5844
5845 if (c_seg_src->c_bytes_used == 0 && c_seg_src->c_state != C_IS_FILLING) {
5846 if (!c_seg_src->c_on_minorcompact_q) {
5847 c_seg_need_delayed_compaction(c_seg_src, FALSE);
5848 }
5849 }
5850
5851 lck_mtx_unlock_always(&c_seg_src->c_lock);
5852 }
5853
5854 if (c_seg_dst) {
5855 PAGE_REPLACEMENT_DISALLOWED(TRUE);
5856
5857 lck_mtx_lock_spin_always(&c_seg_dst->c_lock);
5858
5859 if (c_seg_dst->c_nextoffset >= c_seg_off_limit || c_seg_dst->c_nextslot >= C_SLOT_MAX_INDEX) {
5860 /*
5861 * Nearing or exceeded maximum slot and offset capacity.
5862 */
5863 assert(c_seg_dst->c_busy);
5864 assert(c_seg_dst->c_state == C_IS_FILLING);
5865 assert(!c_seg_dst->c_on_minorcompact_q);
5866
5867 c_current_seg_filled(c_seg_dst, (c_segment_t *)current_chead);
5868 assert(*current_chead == NULL);
5869 }
5870
5871 C_SEG_WAKEUP_DONE(c_seg_dst);
5872
5873 lck_mtx_unlock_always(&c_seg_dst->c_lock);
5874
5875 c_seg_dst = NULL;
5876
5877 PAGE_REPLACEMENT_DISALLOWED(FALSE);
5878 }
5879
5880 return kr;
5881 }
5882 #endif /* CONFIG_FREEZE */
5883