xref: /xnu-11215/osfmk/kern/zalloc.c (revision 8d741a5d)
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28 /*
29  * @OSF_COPYRIGHT@
30  */
31 /*
32  * Mach Operating System
33  * Copyright (c) 1991,1990,1989,1988,1987 Carnegie Mellon University
34  * All Rights Reserved.
35  *
36  * Permission to use, copy, modify and distribute this software and its
37  * documentation is hereby granted, provided that both the copyright
38  * notice and this permission notice appear in all copies of the
39  * software, derivative works or modified versions, and any portions
40  * thereof, and that both notices appear in supporting documentation.
41  *
42  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
43  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND FOR
44  * ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
45  *
46  * Carnegie Mellon requests users of this software to return to
47  *
48  *  Software Distribution Coordinator  or  [email protected]
49  *  School of Computer Science
50  *  Carnegie Mellon University
51  *  Pittsburgh PA 15213-3890
52  *
53  * any improvements or extensions that they make and grant Carnegie Mellon
54  * the rights to redistribute these changes.
55  */
56 /*
57  */
58 /*
59  *	File:	kern/zalloc.c
60  *	Author:	Avadis Tevanian, Jr.
61  *
62  *	Zone-based memory allocator.  A zone is a collection of fixed size
63  *	data blocks for which quick allocation/deallocation is possible.
64  */
65 
66 #define ZALLOC_ALLOW_DEPRECATED 1
67 #if !ZALLOC_TEST
68 #include <mach/mach_types.h>
69 #include <mach/vm_param.h>
70 #include <mach/kern_return.h>
71 #include <mach/mach_host_server.h>
72 #include <mach/task_server.h>
73 #include <mach/machine/vm_types.h>
74 #include <machine/machine_routines.h>
75 #include <mach/vm_map.h>
76 #include <mach/sdt.h>
77 #if __x86_64__
78 #include <i386/cpuid.h>
79 #endif
80 
81 #include <kern/bits.h>
82 #include <kern/btlog.h>
83 #include <kern/startup.h>
84 #include <kern/kern_types.h>
85 #include <kern/assert.h>
86 #include <kern/backtrace.h>
87 #include <kern/host.h>
88 #include <kern/macro_help.h>
89 #include <kern/sched.h>
90 #include <kern/locks.h>
91 #include <kern/sched_prim.h>
92 #include <kern/misc_protos.h>
93 #include <kern/thread_call.h>
94 #include <kern/zalloc_internal.h>
95 #include <kern/kalloc.h>
96 #include <kern/debug.h>
97 
98 #include <prng/random.h>
99 
100 #include <vm/pmap.h>
101 #include <vm/vm_map_internal.h>
102 #include <vm/vm_memtag.h>
103 #include <vm/vm_kern_internal.h>
104 #include <vm/vm_page_internal.h>
105 #include <vm/vm_pageout_internal.h>
106 #include <vm/vm_compressor_xnu.h> /* C_SLOT_PACKED_PTR* */
107 
108 #include <pexpert/pexpert.h>
109 
110 #include <machine/machparam.h>
111 #include <machine/machine_routines.h>  /* ml_cpu_get_info */
112 
113 #include <os/atomic.h>
114 
115 #include <libkern/OSDebug.h>
116 #include <libkern/OSAtomic.h>
117 #include <libkern/section_keywords.h>
118 #include <sys/kdebug.h>
119 #include <sys/code_signing.h>
120 
121 #include <san/kasan.h>
122 #include <libsa/stdlib.h>
123 #include <sys/errno.h>
124 
125 #include <IOKit/IOBSD.h>
126 #include <arm64/amcc_rorgn.h>
127 
128 #if DEBUG
129 #define z_debug_assert(expr)  assert(expr)
130 #else
131 #define z_debug_assert(expr)  (void)(expr)
132 #endif
133 
134 #if CONFIG_PROB_GZALLOC && CONFIG_SPTM
135 #error This is not a supported configuration
136 #endif
137 
138 /* Returns pid of the task with the largest number of VM map entries.  */
139 extern pid_t find_largest_process_vm_map_entries(void);
140 
141 /*
142  * Callout to jetsam. If pid is -1, we wake up the memorystatus thread to do asynchronous kills.
143  * For any other pid we try to kill that process synchronously.
144  */
145 extern boolean_t memorystatus_kill_on_zone_map_exhaustion(pid_t pid);
146 
147 extern zone_t vm_object_zone;
148 extern zone_t ipc_service_port_label_zone;
149 
150 ZONE_DEFINE_TYPE(percpu_u64_zone, "percpu.64", uint64_t,
151     ZC_PERCPU | ZC_ALIGNMENT_REQUIRED | ZC_KASAN_NOREDZONE);
152 
153 #if ZSECURITY_CONFIG(ZONE_TAGGING)
154 #define ZONE_MIN_ELEM_SIZE      (sizeof(uint64_t) * 2)
155 #define ZONE_ALIGN_SIZE         ZONE_MIN_ELEM_SIZE
156 #else /* ZSECURITY_CONFIG_ZONE_TAGGING */
157 #define ZONE_MIN_ELEM_SIZE      sizeof(uint64_t)
158 #define ZONE_ALIGN_SIZE         ZONE_MIN_ELEM_SIZE
159 #endif /* ZSECURITY_CONFIG_ZONE_TAGGING */
160 
161 #define ZONE_MAX_ALLOC_SIZE     (32 * 1024)
162 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
163 #define ZONE_CHUNK_ALLOC_SIZE   (256 * 1024)
164 #define ZONE_GUARD_DENSE        (32  * 1024)
165 #define ZONE_GUARD_SPARSE       (64  * 1024)
166 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) */
167 
168 #if XNU_PLATFORM_MacOSX
169 #define ZONE_MAP_MAX            (32ULL << 30)
170 #define ZONE_MAP_VA_SIZE        (128ULL << 30)
171 #else /* XNU_PLATFORM_MacOSX */
172 #define ZONE_MAP_MAX            (8ULL << 30)
173 #define ZONE_MAP_VA_SIZE        (24ULL << 30)
174 #endif /* !XNU_PLATFORM_MacOSX */
175 
176 __enum_closed_decl(zm_len_t, uint16_t, {
177 	ZM_CHUNK_FREE           = 0x0,
178 	/* 1 through 8 are valid lengths */
179 	ZM_CHUNK_LEN_MAX        = 0x8,
180 
181 	/* PGZ magical values */
182 	ZM_PGZ_FREE             = 0x0,
183 	ZM_PGZ_ALLOCATED        = 0xa, /* [a]llocated   */
184 	ZM_PGZ_GUARD            = 0xb, /* oo[b]         */
185 	ZM_PGZ_DOUBLE_FREE      = 0xd, /* [d]ouble_free */
186 
187 	/* secondary page markers */
188 	ZM_SECONDARY_PAGE       = 0xe,
189 	ZM_SECONDARY_PCPU_PAGE  = 0xf,
190 });
191 
192 static_assert(MAX_ZONES < (1u << 10), "MAX_ZONES must fit in zm_index");
193 
194 struct zone_page_metadata {
195 	union {
196 		struct {
197 			/* The index of the zone this metadata page belongs to */
198 			zone_id_t       zm_index : 10;
199 
200 			/*
201 			 * This chunk ends with a guard page.
202 			 */
203 			uint16_t        zm_guarded : 1;
204 
205 			/*
206 			 * Whether `zm_bitmap` is an inline bitmap
207 			 * or a packed bitmap reference
208 			 */
209 			uint16_t        zm_inline_bitmap : 1;
210 
211 			/*
212 			 * Zones allocate in "chunks" of zone_t::z_chunk_pages
213 			 * consecutive pages, or zpercpu_count() pages if the
214 			 * zone is percpu.
215 			 *
216 			 * The first page of it has its metadata set with:
217 			 * - 0 if none of the pages are currently wired
218 			 * - the number of wired pages in the chunk
219 			 *   (not scaled for percpu).
220 			 *
221 			 * Other pages in the chunk have their zm_chunk_len set
222 			 * to ZM_SECONDARY_PAGE or ZM_SECONDARY_PCPU_PAGE
223 			 * depending on whether the zone is percpu or not.
224 			 * For those, zm_page_index holds the index of that page
225 			 * in the run, and zm_subchunk_len the remaining length
226 			 * within the chunk.
227 			 *
228 			 * Metadata used for PGZ pages can have 3 values:
229 			 * - ZM_PGZ_FREE:         slot is free
230 			 * - ZM_PGZ_ALLOCATED:    slot holds an allocated element
231 			 *                        at offset (zm_pgz_orig_addr & PAGE_MASK)
232 			 * - ZM_PGZ_DOUBLE_FREE:  slot detected a double free
233 			 *                        (will panic).
234 			 */
235 			zm_len_t        zm_chunk_len : 4;
236 		};
237 		uint16_t zm_bits;
238 	};
239 
240 	union {
241 #define ZM_ALLOC_SIZE_LOCK      1u
242 		uint16_t zm_alloc_size; /* first page only */
243 		struct {
244 			uint8_t zm_page_index;   /* secondary pages only */
245 			uint8_t zm_subchunk_len; /* secondary pages only */
246 		};
247 		uint16_t zm_oob_offs;   /* in guard pages  */
248 	};
249 	union {
250 		uint32_t zm_bitmap;     /* most zones      */
251 		uint32_t zm_bump;       /* permanent zones */
252 	};
253 
254 	union {
255 		struct {
256 			zone_pva_t      zm_page_next;
257 			zone_pva_t      zm_page_prev;
258 		};
259 		vm_offset_t zm_pgz_orig_addr;
260 		struct zone_page_metadata *zm_pgz_slot_next;
261 	};
262 };
263 static_assert(sizeof(struct zone_page_metadata) == 16, "validate packing");
264 
265 /*!
266  * @typedef zone_magazine_t
267  *
268  * @brief
269  * Magazine of cached allocations.
270  *
271  * @field zm_next       linkage used by magazine depots.
272  * @field zm_elems      an array of @c zc_mag_size() elements.
273  */
274 struct zone_magazine {
275 	zone_magazine_t         zm_next;
276 	smr_seq_t               zm_seq;
277 	vm_offset_t             zm_elems[0];
278 };
279 
280 /*!
281  * @typedef zone_cache_t
282  *
283  * @brief
284  * Magazine of cached allocations.
285  *
286  * @discussion
287  * Below is a diagram of the caching system. This design is inspired by the
288  * paper "Magazines and Vmem: Extending the Slab Allocator to Many CPUs and
289  * Arbitrary Resources" by Jeff Bonwick and Jonathan Adams and the FreeBSD UMA
290  * zone allocator (itself derived from this seminal work).
291  *
292  * It is divided into 3 layers:
293  * - the per-cpu layer,
294  * - the recirculation depot layer,
295  * - the Zone Allocator.
296  *
297  * The per-cpu and recirculation depot layer use magazines (@c zone_magazine_t),
298  * which are stacks of up to @c zc_mag_size() elements.
299  *
300  * <h2>CPU layer</h2>
301  *
302  * The CPU layer (@c zone_cache_t) looks like this:
303  *
304  *      ╭─ a ─ f ─┬───────── zm_depot ──────────╮
305  *      │ ╭─╮ ╭─╮ │ ╭─╮ ╭─╮ ╭─╮ ╭─╮ ╭─╮         │
306  *      │ │#│ │#│ │ │#│ │#│ │#│ │#│ │#│         │
307  *      │ │#│ │ │ │ │#│ │#│ │#│ │#│ │#│         │
308  *      │ │ │ │ │ │ │#│ │#│ │#│ │#│ │#│         │
309  *      │ ╰─╯ ╰─╯ │ ╰─╯ ╰─╯ ╰─╯ ╰─╯ ╰─╯         │
310  *      ╰─────────┴─────────────────────────────╯
311  *
312  * It has two pre-loaded magazines (a)lloc and (f)ree which we allocate from,
313  * or free to. Serialization is achieved through disabling preemption, and only
314  * the current CPU can acces those allocations. This is represented on the left
315  * hand side of the diagram above.
316  *
317  * The right hand side is the per-cpu depot. It consists of @c zm_depot_count
318  * full magazines, and is protected by the @c zm_depot_lock for access.
319  * The lock is expected to absolutely never be contended, as only the local CPU
320  * tends to access the local per-cpu depot in regular operation mode.
321  *
322  * However unlike UMA, our implementation allows for the zone GC to reclaim
323  * per-CPU magazines aggresively, which is serialized with the @c zm_depot_lock.
324  *
325  *
326  * <h2>Recirculation Depot</h2>
327  *
328  * The recirculation depot layer is a list similar to the per-cpu depot,
329  * however it is different in two fundamental ways:
330  *
331  * - it is protected by the regular zone lock,
332  * - elements referenced by the magazines in that layer appear free
333  *   to the zone layer.
334  *
335  *
336  * <h2>Magazine circulation and sizing</h2>
337  *
338  * The caching system sizes itself dynamically. Operations that allocate/free
339  * a single element call @c zone_lock_nopreempt_check_contention() which records
340  * contention on the lock by doing a trylock and recording its success.
341  *
342  * This information is stored in the @c z_recirc_cont_cur field of the zone,
343  * and a windowed moving average is maintained in @c z_contention_wma.
344  * The periodically run function @c compute_zone_working_set_size() will then
345  * take this into account to decide to grow the number of buckets allowed
346  * in the depot or shrink it based on the @c zc_grow_level and @c zc_shrink_level
347  * thresholds.
348  *
349  * The per-cpu layer will attempt to work with its depot, finding both full and
350  * empty magazines cached there. If it can't get what it needs, then it will
351  * mediate with the zone recirculation layer. Such recirculation is done in
352  * batches in order to amortize lock holds.
353  * (See @c {zalloc,zfree}_cached_depot_recirculate()).
354  *
355  * The recirculation layer keeps a track of what the minimum amount of magazines
356  * it had over time was for each of the full and empty queues. This allows for
357  * @c compute_zone_working_set_size() to return memory to the system when a zone
358  * stops being used as much.
359  *
360  * <h2>Security considerations</h2>
361  *
362  * The zone caching layer has been designed to avoid returning elements in
363  * a strict LIFO behavior: @c zalloc() will allocate from the (a) magazine,
364  * and @c zfree() free to the (f) magazine, and only swap them when the
365  * requested operation cannot be fulfilled.
366  *
367  * The per-cpu overflow depot or the recirculation depots are similarly used
368  * in FIFO order.
369  *
370  * @field zc_depot_lock     a lock to access @c zc_depot, @c zc_depot_cur.
371  * @field zc_alloc_cur      denormalized number of elements in the (a) magazine
372  * @field zc_free_cur       denormalized number of elements in the (f) magazine
373  * @field zc_alloc_elems    a pointer to the array of elements in (a)
374  * @field zc_free_elems     a pointer to the array of elements in (f)
375  *
376  * @field zc_depot          a list of @c zc_depot_cur full magazines
377  */
378 typedef struct zone_cache {
379 	hw_lck_ticket_t            zc_depot_lock;
380 	uint16_t                   zc_alloc_cur;
381 	uint16_t                   zc_free_cur;
382 	vm_offset_t               *zc_alloc_elems;
383 	vm_offset_t               *zc_free_elems;
384 	struct zone_depot          zc_depot;
385 	smr_t                      zc_smr;
386 	zone_smr_free_cb_t XNU_PTRAUTH_SIGNED_FUNCTION_PTR("zc_free") zc_free;
387 } __attribute__((aligned(64))) * zone_cache_t;
388 
389 #if !__x86_64__
390 static
391 #endif
392 __security_const_late struct {
393 	struct mach_vm_range       zi_map_range;  /* all zone submaps     */
394 	struct mach_vm_range       zi_ro_range;   /* read-only range      */
395 	struct mach_vm_range       zi_meta_range; /* debugging only       */
396 	struct mach_vm_range       zi_bits_range; /* bits buddy allocator */
397 	struct mach_vm_range       zi_xtra_range; /* vm tracking metadata */
398 	struct mach_vm_range       zi_pgz_range;
399 	struct zone_page_metadata *zi_pgz_meta;
400 
401 	/*
402 	 * The metadata lives within the zi_meta_range address range.
403 	 *
404 	 * The correct formula to find a metadata index is:
405 	 *     absolute_page_index - page_index(zi_map_range.min_address)
406 	 *
407 	 * And then this index is used to dereference zi_meta_range.min_address
408 	 * as a `struct zone_page_metadata` array.
409 	 *
410 	 * To avoid doing that substraction all the time in the various fast-paths,
411 	 * zi_meta_base are pre-offset with that minimum page index to avoid redoing
412 	 * that math all the time.
413 	 */
414 	struct zone_page_metadata *zi_meta_base;
415 } zone_info;
416 
417 __startup_data static struct mach_vm_range  zone_map_range;
418 __startup_data static vm_map_size_t         zone_meta_size;
419 __startup_data static vm_map_size_t         zone_bits_size;
420 __startup_data static vm_map_size_t         zone_xtra_size;
421 
422 /*
423  * Initial array of metadata for stolen memory.
424  *
425  * The numbers here have to be kept in sync with vm_map_steal_memory()
426  * so that we have reserved enough metadata.
427  *
428  * After zone_init() has run (which happens while the kernel is still single
429  * threaded), the metadata is moved to its final dynamic location, and
430  * this array is unmapped with the rest of __startup_data at lockdown.
431  */
432 #define ZONE_EARLY_META_INLINE_COUNT    64
433 __startup_data
434 static struct zone_page_metadata
435     zone_early_meta_array_startup[ZONE_EARLY_META_INLINE_COUNT];
436 
437 
438 __startup_data __attribute__((aligned(PAGE_MAX_SIZE)))
439 static uint8_t zone_early_pages_to_cram[PAGE_MAX_SIZE * 16];
440 
441 /*
442  *	The zone_locks_grp allows for collecting lock statistics.
443  *	All locks are associated to this group in zinit.
444  *	Look at tools/lockstat for debugging lock contention.
445  */
446 LCK_GRP_DECLARE(zone_locks_grp, "zone_locks");
447 static LCK_MTX_DECLARE(zone_metadata_region_lck, &zone_locks_grp);
448 
449 /*
450  *	The zone metadata lock protects:
451  *	- metadata faulting,
452  *	- VM submap VA allocations,
453  *	- early gap page queue list
454  */
455 #define zone_meta_lock()   lck_mtx_lock(&zone_metadata_region_lck);
456 #define zone_meta_unlock() lck_mtx_unlock(&zone_metadata_region_lck);
457 
458 /*
459  *	Exclude more than one concurrent garbage collection
460  */
461 static LCK_GRP_DECLARE(zone_gc_lck_grp, "zone_gc");
462 static LCK_MTX_DECLARE(zone_gc_lock, &zone_gc_lck_grp);
463 static LCK_SPIN_DECLARE(zone_exhausted_lock, &zone_gc_lck_grp);
464 
465 /*
466  * Panic logging metadata
467  */
468 bool panic_include_zprint = false;
469 bool panic_include_kalloc_types = false;
470 zone_t kalloc_type_src_zone = ZONE_NULL;
471 zone_t kalloc_type_dst_zone = ZONE_NULL;
472 mach_memory_info_t *panic_kext_memory_info = NULL;
473 vm_size_t panic_kext_memory_size = 0;
474 vm_offset_t panic_fault_address = 0;
475 
476 /*
477  *      Protects zone_array, num_zones, num_zones_in_use, and
478  *      zone_destroyed_bitmap
479  */
480 static SIMPLE_LOCK_DECLARE(all_zones_lock, 0);
481 static zone_id_t        num_zones_in_use;
482 zone_id_t _Atomic       num_zones;
483 SECURITY_READ_ONLY_LATE(unsigned int) zone_view_count;
484 
485 /*
486  * Initial globals for zone stats until we can allocate the real ones.
487  * Those get migrated inside the per-CPU ones during zone_init() and
488  * this array is unmapped with the rest of __startup_data at lockdown.
489  */
490 
491 /* zone to allocate zone_magazine structs from */
492 static SECURITY_READ_ONLY_LATE(zone_t) zc_magazine_zone;
493 /*
494  * Until pid1 is made, zone caching is off,
495  * until compute_zone_working_set_size() runs for the firt time.
496  *
497  * -1 represents the "never enabled yet" value.
498  */
499 static int8_t zone_caching_disabled = -1;
500 
501 __startup_data
502 static struct zone_stats zone_stats_startup[MAX_ZONES];
503 struct zone              zone_array[MAX_ZONES];
504 SECURITY_READ_ONLY_LATE(zone_security_flags_t) zone_security_array[MAX_ZONES] = {
505 	[0 ... MAX_ZONES - 1] = {
506 		.z_kheap_id       = KHEAP_ID_NONE,
507 		.z_noencrypt      = false,
508 		.z_submap_idx     = Z_SUBMAP_IDX_GENERAL_0,
509 		.z_kalloc_type    = false,
510 		.z_sig_eq         = 0,
511 #if ZSECURITY_CONFIG(ZONE_TAGGING)
512 		.z_tag            = 1,
513 #else /* ZSECURITY_CONFIG(ZONE_TAGGING) */
514 		.z_tag            = 0,
515 #endif /* ZSECURITY_CONFIG(ZONE_TAGGING) */
516 	},
517 };
518 SECURITY_READ_ONLY_LATE(struct zone_size_params) zone_ro_size_params[ZONE_ID__LAST_RO + 1];
SECURITY_READ_ONLY_LATE(zone_cache_ops_t)519 SECURITY_READ_ONLY_LATE(zone_cache_ops_t) zcache_ops[ZONE_ID__FIRST_DYNAMIC];
520 
521 #if DEBUG || DEVELOPMENT
522 unsigned int
523 zone_max_zones(void)
524 {
525 	return MAX_ZONES;
526 }
527 #endif
528 
529 /* Initialized in zone_bootstrap(), how many "copies" the per-cpu system does */
530 static SECURITY_READ_ONLY_LATE(unsigned) zpercpu_early_count;
531 
532 /* Used to keep track of destroyed slots in the zone_array */
533 static bitmap_t zone_destroyed_bitmap[BITMAP_LEN(MAX_ZONES)];
534 
535 /* number of zone mapped pages used by all zones */
536 static size_t _Atomic zone_pages_jetsam_threshold = ~0;
537 size_t zone_pages_wired;
538 size_t zone_guard_pages;
539 
540 /* Time in (ms) after which we panic for zone exhaustions */
541 TUNABLE(int, zone_exhausted_timeout, "zet", 5000);
542 static bool zone_share_always = true;
543 static TUNABLE_WRITEABLE(uint32_t, zone_early_thres_mul, "zone_early_thres_mul", 5);
544 
545 #if VM_TAG_SIZECLASSES
546 /*
547  * Zone tagging allows for per "tag" accounting of allocations for the kalloc
548  * zones only.
549  *
550  * There are 3 kinds of tags that can be used:
551  * - pre-registered VM_KERN_MEMORY_*
552  * - dynamic tags allocated per call sites in core-kernel (using vm_tag_alloc())
553  * - per-kext tags computed by IOKit (using the magic Z_VM_TAG_BT_BIT marker).
554  *
555  * The VM tracks the statistics in lazily allocated structures.
556  * See vm_tag_will_update_zone(), vm_tag_update_zone_size().
557  *
558  * If for some reason the requested tag cannot be accounted for,
559  * the tag is forced to VM_KERN_MEMORY_KALLOC which is pre-allocated.
560  *
561  * Each allocated element also remembers the tag it was assigned,
562  * which lets zalloc/zfree update statistics correctly.
563  */
564 
565 /* enable tags for zones that ask for it */
566 static TUNABLE(bool, zone_tagging_on, "-zt", false);
567 
568 /*
569  * Array of all sizeclasses used by kalloc variants so that we can
570  * have accounting per size class for each kalloc callsite
571  */
572 static uint16_t zone_tags_sizeclasses[VM_TAG_SIZECLASSES];
573 #endif /* VM_TAG_SIZECLASSES */
574 
575 #if DEBUG || DEVELOPMENT
576 static int zalloc_simulate_vm_pressure;
577 #endif /* DEBUG || DEVELOPMENT */
578 
579 #define Z_TUNABLE(t, n, d) \
580 	TUNABLE(t, _##n, #n, d); \
581 	__pure2 static inline t n(void) { return _##n; }
582 
583 /*
584  * Zone caching tunables
585  *
586  * zc_mag_size():
587  *   size of magazines, larger to reduce contention at the expense of memory
588  *
589  * zc_enable_level
590  *   number of contentions per second after which zone caching engages
591  *   automatically.
592  *
593  *   0 to disable.
594  *
595  * zc_grow_level
596  *   number of contentions per second x cpu after which the number of magazines
597  *   allowed in the depot can grow. (in "Z_WMA_UNIT" units).
598  *
599  * zc_shrink_level
600  *   number of contentions per second x cpu below which the number of magazines
601  *   allowed in the depot will shrink. (in "Z_WMA_UNIT" units).
602  *
603  * zc_pcpu_max
604  *   maximum memory size in bytes that can hang from a CPU,
605  *   which will affect how many magazines are allowed in the depot.
606  *
607  *   The alloc/free magazines are assumed to be on average half-empty
608  *   and to count for "1" unit of magazines.
609  *
610  * zc_autotrim_size
611  *   Size allowed to hang extra from the recirculation depot before
612  *   auto-trim kicks in.
613  *
614  * zc_autotrim_buckets
615  *
616  *   How many buckets in excess of the working-set are allowed
617  *   before auto-trim kicks in for empty buckets.
618  *
619  * zc_free_batch_size
620  *   The size of batches of frees/reclaim that can be done keeping
621  *   the zone lock held (and preemption disabled).
622  */
623 Z_TUNABLE(uint16_t, zc_mag_size, 8);
624 static Z_TUNABLE(uint32_t, zc_enable_level, 10);
625 static Z_TUNABLE(uint32_t, zc_grow_level, 5 * Z_WMA_UNIT);
626 static Z_TUNABLE(uint32_t, zc_shrink_level, Z_WMA_UNIT / 2);
627 static Z_TUNABLE(uint32_t, zc_pcpu_max, 128 << 10);
628 static Z_TUNABLE(uint32_t, zc_autotrim_size, 16 << 10);
629 static Z_TUNABLE(uint32_t, zc_autotrim_buckets, 8);
630 static Z_TUNABLE(uint32_t, zc_free_batch_size, 128);
631 
632 static SECURITY_READ_ONLY_LATE(size_t)    zone_pages_wired_max;
633 static SECURITY_READ_ONLY_LATE(vm_map_t)  zone_submaps[Z_SUBMAP_IDX_COUNT];
634 static SECURITY_READ_ONLY_LATE(vm_map_t)  zone_meta_map;
635 static char const * const zone_submaps_names[Z_SUBMAP_IDX_COUNT] = {
636 	[Z_SUBMAP_IDX_VM]               = "VM",
637 	[Z_SUBMAP_IDX_READ_ONLY]        = "RO",
638 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
639 	[Z_SUBMAP_IDX_GENERAL_0]        = "GEN0",
640 	[Z_SUBMAP_IDX_GENERAL_1]        = "GEN1",
641 	[Z_SUBMAP_IDX_GENERAL_2]        = "GEN2",
642 	[Z_SUBMAP_IDX_GENERAL_3]        = "GEN3",
643 #else
644 	[Z_SUBMAP_IDX_GENERAL_0]        = "GEN",
645 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) */
646 	[Z_SUBMAP_IDX_DATA]             = "DATA",
647 };
648 
649 #if __x86_64__
650 #define ZONE_ENTROPY_CNT 8
651 #else
652 #define ZONE_ENTROPY_CNT 2
653 #endif
654 static struct zone_bool_gen {
655 	struct bool_gen zbg_bg;
656 	uint32_t zbg_entropy[ZONE_ENTROPY_CNT];
657 } zone_bool_gen[MAX_CPUS];
658 
659 #if CONFIG_PROB_GZALLOC
660 /*
661  * Probabilistic gzalloc
662  * =====================
663  *
664  *
665  * Probabilistic guard zalloc samples allocations and will protect them by
666  * double-mapping the page holding them and returning the secondary virtual
667  * address to its callers.
668  *
669  * Its data structures are lazily allocated if the `pgz` or `pgz1` boot-args
670  * are set.
671  *
672  *
673  * Unlike GZalloc, PGZ uses a fixed amount of memory, and is compatible with
674  * most zalloc/kalloc features:
675  * - zone_require is functional
676  * - zone caching or zone tagging is compatible
677  * - non-blocking allocation work (they will always return NULL with gzalloc).
678  *
679  * PGZ limitations:
680  * - VA sequestering isn't respected, as the slots (which are in limited
681  *   quantity) will be reused for any type, however the PGZ quarantine
682  *   somewhat mitigates the impact.
683  * - zones with elements larger than a page cannot be protected.
684  *
685  *
686  * Tunables:
687  * --------
688  *
689  * pgz=1:
690  *   Turn on probabilistic guard malloc for all zones
691  *
692  *   (default on for DEVELOPMENT, off for RELEASE, or if pgz1... are specified)
693  *
694  * pgz_sample_rate=0 to 2^31
695  *   average sample rate between two guarded allocations.
696  *   0 means every allocation.
697  *
698  *   The default is a random number between 1000 and 10,000
699  *
700  * pgz_slots
701  *   how many allocations to protect.
702  *
703  *   Each costs:
704  *   - a PTE in the pmap (when allocated)
705  *   - 2 zone page meta's (every other page is a "guard" one, 32B total)
706  *   - 64 bytes per backtraces.
707  *   On LP64 this is <16K per 100 slots.
708  *
709  *   The default is ~200 slots per G of physical ram (32k / G)
710  *
711  *   TODO:
712  *   - try harder to allocate elements at the "end" to catch OOB more reliably.
713  *
714  * pgz_quarantine
715  *   how many slots should be free at any given time.
716  *
717  *   PGZ will round robin through free slots to be reused, but free slots are
718  *   important to detect use-after-free by acting as a quarantine.
719  *
720  *   By default, PGZ will keep 33% of the slots around at all time.
721  *
722  * pgz1=<name>, pgz2=<name>, ..., pgzn=<name>...
723  *   Specific zones for which to enable probabilistic guard malloc.
724  *   There must be no numbering gap (names after the gap will be ignored).
725  */
726 #if DEBUG || DEVELOPMENT
727 static TUNABLE(bool, pgz_all, "pgz", true);
728 #else
729 static TUNABLE(bool, pgz_all, "pgz", false);
730 #endif
731 static TUNABLE(uint32_t, pgz_sample_rate, "pgz_sample_rate", 0);
732 static TUNABLE(uint32_t, pgz_slots, "pgz_slots", UINT32_MAX);
733 static TUNABLE(uint32_t, pgz_quarantine, "pgz_quarantine", 0);
734 #endif /* CONFIG_PROB_GZALLOC */
735 
736 static zone_t zone_find_largest(uint64_t *zone_size);
737 
738 #endif /* !ZALLOC_TEST */
739 #pragma mark Zone metadata
740 #if !ZALLOC_TEST
741 
742 static inline bool
zone_has_index(zone_t z,zone_id_t zid)743 zone_has_index(zone_t z, zone_id_t zid)
744 {
745 	return zone_array + zid == z;
746 }
747 
748 __abortlike
749 void
zone_invalid_panic(zone_t zone)750 zone_invalid_panic(zone_t zone)
751 {
752 	panic("zone %p isn't in the zone_array", zone);
753 }
754 
755 __abortlike
756 static void
zone_metadata_corruption(zone_t zone,struct zone_page_metadata * meta,const char * kind)757 zone_metadata_corruption(zone_t zone, struct zone_page_metadata *meta,
758     const char *kind)
759 {
760 	panic("zone metadata corruption: %s (meta %p, zone %s%s)",
761 	    kind, meta, zone_heap_name(zone), zone->z_name);
762 }
763 
764 __abortlike
765 static void
zone_invalid_element_addr_panic(zone_t zone,vm_offset_t addr)766 zone_invalid_element_addr_panic(zone_t zone, vm_offset_t addr)
767 {
768 	panic("zone element pointer validation failed (addr: %p, zone %s%s)",
769 	    (void *)addr, zone_heap_name(zone), zone->z_name);
770 }
771 
772 __abortlike
773 static void
zone_page_metadata_index_confusion_panic(zone_t zone,vm_offset_t addr,struct zone_page_metadata * meta)774 zone_page_metadata_index_confusion_panic(zone_t zone, vm_offset_t addr,
775     struct zone_page_metadata *meta)
776 {
777 	zone_security_flags_t zsflags = zone_security_config(zone), src_zsflags;
778 	zone_id_t zidx;
779 	zone_t src_zone;
780 
781 	if (zsflags.z_kalloc_type) {
782 		panic_include_kalloc_types = true;
783 		kalloc_type_dst_zone = zone;
784 	}
785 
786 	zidx = meta->zm_index;
787 	if (zidx >= os_atomic_load(&num_zones, relaxed)) {
788 		panic("%p expected in zone %s%s[%d], but metadata has invalid zidx: %d",
789 		    (void *)addr, zone_heap_name(zone), zone->z_name, zone_index(zone),
790 		    zidx);
791 	}
792 
793 	src_zone = &zone_array[zidx];
794 	src_zsflags = zone_security_array[zidx];
795 	if (src_zsflags.z_kalloc_type) {
796 		panic_include_kalloc_types = true;
797 		kalloc_type_src_zone = src_zone;
798 	}
799 
800 	panic("%p not in the expected zone %s%s[%d], but found in %s%s[%d]",
801 	    (void *)addr, zone_heap_name(zone), zone->z_name, zone_index(zone),
802 	    zone_heap_name(src_zone), src_zone->z_name, zidx);
803 }
804 
805 __abortlike
806 static void
zone_page_metadata_list_corruption(zone_t zone,struct zone_page_metadata * meta)807 zone_page_metadata_list_corruption(zone_t zone, struct zone_page_metadata *meta)
808 {
809 	panic("metadata list corruption through element %p detected in zone %s%s",
810 	    meta, zone_heap_name(zone), zone->z_name);
811 }
812 
813 __abortlike
814 static void
zone_page_meta_accounting_panic(zone_t zone,struct zone_page_metadata * meta,const char * kind)815 zone_page_meta_accounting_panic(zone_t zone, struct zone_page_metadata *meta,
816     const char *kind)
817 {
818 	panic("accounting mismatch (%s) for zone %s%s, meta %p", kind,
819 	    zone_heap_name(zone), zone->z_name, meta);
820 }
821 
822 __abortlike
823 static void
zone_meta_double_free_panic(zone_t zone,vm_offset_t addr,const char * caller)824 zone_meta_double_free_panic(zone_t zone, vm_offset_t addr, const char *caller)
825 {
826 	panic("%s: double free of %p to zone %s%s", caller,
827 	    (void *)addr, zone_heap_name(zone), zone->z_name);
828 }
829 
830 __abortlike
831 static void
zone_accounting_panic(zone_t zone,const char * kind)832 zone_accounting_panic(zone_t zone, const char *kind)
833 {
834 	panic("accounting mismatch (%s) for zone %s%s", kind,
835 	    zone_heap_name(zone), zone->z_name);
836 }
837 
838 #define zone_counter_sub(z, stat, value)  ({ \
839 	if (os_sub_overflow((z)->stat, value, &(z)->stat)) { \
840 	    zone_accounting_panic(z, #stat " wrap-around"); \
841 	} \
842 	(z)->stat; \
843 })
844 
845 static inline uint16_t
zone_meta_alloc_size_add(zone_t z,struct zone_page_metadata * m,vm_offset_t esize)846 zone_meta_alloc_size_add(zone_t z, struct zone_page_metadata *m,
847     vm_offset_t esize)
848 {
849 	if (os_add_overflow(m->zm_alloc_size, (uint16_t)esize, &m->zm_alloc_size)) {
850 		zone_page_meta_accounting_panic(z, m, "alloc_size wrap-around");
851 	}
852 	return m->zm_alloc_size;
853 }
854 
855 static inline uint16_t
zone_meta_alloc_size_sub(zone_t z,struct zone_page_metadata * m,vm_offset_t esize)856 zone_meta_alloc_size_sub(zone_t z, struct zone_page_metadata *m,
857     vm_offset_t esize)
858 {
859 	if (os_sub_overflow(m->zm_alloc_size, esize, &m->zm_alloc_size)) {
860 		zone_page_meta_accounting_panic(z, m, "alloc_size wrap-around");
861 	}
862 	return m->zm_alloc_size;
863 }
864 
865 __abortlike
866 static void
zone_nofail_panic(zone_t zone)867 zone_nofail_panic(zone_t zone)
868 {
869 	panic("zalloc(Z_NOFAIL) can't be satisfied for zone %s%s (potential leak)",
870 	    zone_heap_name(zone), zone->z_name);
871 }
872 
873 __header_always_inline bool
zone_spans_ro_va(vm_offset_t addr_start,vm_offset_t addr_end)874 zone_spans_ro_va(vm_offset_t addr_start, vm_offset_t addr_end)
875 {
876 	const struct mach_vm_range *ro_r = &zone_info.zi_ro_range;
877 	struct mach_vm_range r = { addr_start, addr_end };
878 
879 	return mach_vm_range_intersects(ro_r, &r);
880 }
881 
882 #define from_range(r, addr, size) \
883 	__builtin_choose_expr(__builtin_constant_p(size) ? (size) == 1 : 0, \
884 	mach_vm_range_contains(r, (mach_vm_offset_t)(addr)), \
885 	mach_vm_range_contains(r, (mach_vm_offset_t)(addr), size))
886 
887 #define from_ro_map(addr, size) \
888 	from_range(&zone_info.zi_ro_range, addr, size)
889 
890 #define from_zone_map(addr, size) \
891 	from_range(&zone_info.zi_map_range, addr, size)
892 
893 __header_always_inline bool
zone_pva_is_null(zone_pva_t page)894 zone_pva_is_null(zone_pva_t page)
895 {
896 	return page.packed_address == 0;
897 }
898 
899 __header_always_inline bool
zone_pva_is_queue(zone_pva_t page)900 zone_pva_is_queue(zone_pva_t page)
901 {
902 	// actual kernel pages have the top bit set
903 	return (int32_t)page.packed_address > 0;
904 }
905 
906 __header_always_inline bool
zone_pva_is_equal(zone_pva_t pva1,zone_pva_t pva2)907 zone_pva_is_equal(zone_pva_t pva1, zone_pva_t pva2)
908 {
909 	return pva1.packed_address == pva2.packed_address;
910 }
911 
912 __header_always_inline zone_pva_t *
zone_pageq_base(void)913 zone_pageq_base(void)
914 {
915 	extern zone_pva_t data_seg_start[] __SEGMENT_START_SYM("__DATA");
916 
917 	/*
918 	 * `-1` so that if the first __DATA variable is a page queue,
919 	 * it gets a non 0 index
920 	 */
921 	return data_seg_start - 1;
922 }
923 
924 __header_always_inline void
zone_queue_set_head(zone_t z,zone_pva_t queue,zone_pva_t oldv,struct zone_page_metadata * meta)925 zone_queue_set_head(zone_t z, zone_pva_t queue, zone_pva_t oldv,
926     struct zone_page_metadata *meta)
927 {
928 	zone_pva_t *queue_head = &zone_pageq_base()[queue.packed_address];
929 
930 	if (!zone_pva_is_equal(*queue_head, oldv)) {
931 		zone_page_metadata_list_corruption(z, meta);
932 	}
933 	*queue_head = meta->zm_page_next;
934 }
935 
936 __header_always_inline zone_pva_t
zone_queue_encode(zone_pva_t * headp)937 zone_queue_encode(zone_pva_t *headp)
938 {
939 	return (zone_pva_t){ (uint32_t)(headp - zone_pageq_base()) };
940 }
941 
942 __header_always_inline zone_pva_t
zone_pva_from_addr(vm_address_t addr)943 zone_pva_from_addr(vm_address_t addr)
944 {
945 	// cannot use atop() because we want to maintain the sign bit
946 	return (zone_pva_t){ (uint32_t)((intptr_t)addr >> PAGE_SHIFT) };
947 }
948 
949 __header_always_inline vm_address_t
zone_pva_to_addr(zone_pva_t page)950 zone_pva_to_addr(zone_pva_t page)
951 {
952 	// cause sign extension so that we end up with the right address
953 	return (vm_offset_t)(int32_t)page.packed_address << PAGE_SHIFT;
954 }
955 
956 __header_always_inline struct zone_page_metadata *
zone_pva_to_meta(zone_pva_t page)957 zone_pva_to_meta(zone_pva_t page)
958 {
959 	return &zone_info.zi_meta_base[page.packed_address];
960 }
961 
962 __header_always_inline zone_pva_t
zone_pva_from_meta(struct zone_page_metadata * meta)963 zone_pva_from_meta(struct zone_page_metadata *meta)
964 {
965 	return (zone_pva_t){ (uint32_t)(meta - zone_info.zi_meta_base) };
966 }
967 
968 __header_always_inline struct zone_page_metadata *
zone_meta_from_addr(vm_offset_t addr)969 zone_meta_from_addr(vm_offset_t addr)
970 {
971 	return zone_pva_to_meta(zone_pva_from_addr(addr));
972 }
973 
974 __header_always_inline zone_id_t
zone_index_from_ptr(const void * ptr)975 zone_index_from_ptr(const void *ptr)
976 {
977 	return zone_pva_to_meta(zone_pva_from_addr((vm_offset_t)ptr))->zm_index;
978 }
979 
980 __header_always_inline vm_offset_t
zone_meta_to_addr(struct zone_page_metadata * meta)981 zone_meta_to_addr(struct zone_page_metadata *meta)
982 {
983 	return ptoa((int32_t)(meta - zone_info.zi_meta_base));
984 }
985 
986 __attribute__((overloadable))
987 __header_always_inline void
zone_meta_validate(zone_t z,struct zone_page_metadata * meta,vm_address_t addr)988 zone_meta_validate(zone_t z, struct zone_page_metadata *meta, vm_address_t addr)
989 {
990 	if (!zone_has_index(z, meta->zm_index)) {
991 		zone_page_metadata_index_confusion_panic(z, addr, meta);
992 	}
993 }
994 
995 __attribute__((overloadable))
996 __header_always_inline void
zone_meta_validate(zone_t z,struct zone_page_metadata * meta)997 zone_meta_validate(zone_t z, struct zone_page_metadata *meta)
998 {
999 	zone_meta_validate(z, meta, zone_meta_to_addr(meta));
1000 }
1001 
1002 __header_always_inline void
zone_meta_queue_push(zone_t z,zone_pva_t * headp,struct zone_page_metadata * meta)1003 zone_meta_queue_push(zone_t z, zone_pva_t *headp,
1004     struct zone_page_metadata *meta)
1005 {
1006 	zone_pva_t head = *headp;
1007 	zone_pva_t queue_pva = zone_queue_encode(headp);
1008 	struct zone_page_metadata *tmp;
1009 
1010 	meta->zm_page_next = head;
1011 	if (!zone_pva_is_null(head)) {
1012 		tmp = zone_pva_to_meta(head);
1013 		if (!zone_pva_is_equal(tmp->zm_page_prev, queue_pva)) {
1014 			zone_page_metadata_list_corruption(z, meta);
1015 		}
1016 		tmp->zm_page_prev = zone_pva_from_meta(meta);
1017 	}
1018 	meta->zm_page_prev = queue_pva;
1019 	*headp = zone_pva_from_meta(meta);
1020 }
1021 
1022 __header_always_inline struct zone_page_metadata *
zone_meta_queue_pop(zone_t z,zone_pva_t * headp)1023 zone_meta_queue_pop(zone_t z, zone_pva_t *headp)
1024 {
1025 	zone_pva_t head = *headp;
1026 	struct zone_page_metadata *meta = zone_pva_to_meta(head);
1027 	struct zone_page_metadata *tmp;
1028 
1029 	zone_meta_validate(z, meta);
1030 
1031 	if (!zone_pva_is_null(meta->zm_page_next)) {
1032 		tmp = zone_pva_to_meta(meta->zm_page_next);
1033 		if (!zone_pva_is_equal(tmp->zm_page_prev, head)) {
1034 			zone_page_metadata_list_corruption(z, meta);
1035 		}
1036 		tmp->zm_page_prev = meta->zm_page_prev;
1037 	}
1038 	*headp = meta->zm_page_next;
1039 
1040 	meta->zm_page_next = meta->zm_page_prev = (zone_pva_t){ 0 };
1041 
1042 	return meta;
1043 }
1044 
1045 __header_always_inline void
zone_meta_remqueue(zone_t z,struct zone_page_metadata * meta)1046 zone_meta_remqueue(zone_t z, struct zone_page_metadata *meta)
1047 {
1048 	zone_pva_t meta_pva = zone_pva_from_meta(meta);
1049 	struct zone_page_metadata *tmp;
1050 
1051 	if (!zone_pva_is_null(meta->zm_page_next)) {
1052 		tmp = zone_pva_to_meta(meta->zm_page_next);
1053 		if (!zone_pva_is_equal(tmp->zm_page_prev, meta_pva)) {
1054 			zone_page_metadata_list_corruption(z, meta);
1055 		}
1056 		tmp->zm_page_prev = meta->zm_page_prev;
1057 	}
1058 	if (zone_pva_is_queue(meta->zm_page_prev)) {
1059 		zone_queue_set_head(z, meta->zm_page_prev, meta_pva, meta);
1060 	} else {
1061 		tmp = zone_pva_to_meta(meta->zm_page_prev);
1062 		if (!zone_pva_is_equal(tmp->zm_page_next, meta_pva)) {
1063 			zone_page_metadata_list_corruption(z, meta);
1064 		}
1065 		tmp->zm_page_next = meta->zm_page_next;
1066 	}
1067 
1068 	meta->zm_page_next = meta->zm_page_prev = (zone_pva_t){ 0 };
1069 }
1070 
1071 __header_always_inline void
zone_meta_requeue(zone_t z,zone_pva_t * headp,struct zone_page_metadata * meta)1072 zone_meta_requeue(zone_t z, zone_pva_t *headp,
1073     struct zone_page_metadata *meta)
1074 {
1075 	zone_meta_remqueue(z, meta);
1076 	zone_meta_queue_push(z, headp, meta);
1077 }
1078 
1079 /* prevents a given metadata from ever reaching the z_pageq_empty queue */
1080 static inline void
zone_meta_lock_in_partial(zone_t z,struct zone_page_metadata * m,uint32_t len)1081 zone_meta_lock_in_partial(zone_t z, struct zone_page_metadata *m, uint32_t len)
1082 {
1083 	uint16_t new_size = zone_meta_alloc_size_add(z, m, ZM_ALLOC_SIZE_LOCK);
1084 
1085 	assert(new_size % sizeof(vm_offset_t) == ZM_ALLOC_SIZE_LOCK);
1086 	if (new_size == ZM_ALLOC_SIZE_LOCK) {
1087 		zone_meta_requeue(z, &z->z_pageq_partial, m);
1088 		zone_counter_sub(z, z_wired_empty, len);
1089 	}
1090 }
1091 
1092 /* allows a given metadata to reach the z_pageq_empty queue again */
1093 static inline void
zone_meta_unlock_from_partial(zone_t z,struct zone_page_metadata * m,uint32_t len)1094 zone_meta_unlock_from_partial(zone_t z, struct zone_page_metadata *m, uint32_t len)
1095 {
1096 	uint16_t new_size = zone_meta_alloc_size_sub(z, m, ZM_ALLOC_SIZE_LOCK);
1097 
1098 	assert(new_size % sizeof(vm_offset_t) == 0);
1099 	if (new_size == 0) {
1100 		zone_meta_requeue(z, &z->z_pageq_empty, m);
1101 		z->z_wired_empty += len;
1102 	}
1103 }
1104 
1105 /*
1106  * Routine to populate a page backing metadata in the zone_metadata_region.
1107  * Must be called without the zone lock held as it might potentially block.
1108  */
1109 static void
zone_meta_populate(vm_offset_t base,vm_size_t size)1110 zone_meta_populate(vm_offset_t base, vm_size_t size)
1111 {
1112 	struct zone_page_metadata *from = zone_meta_from_addr(base);
1113 	struct zone_page_metadata *to   = from + atop(size);
1114 	vm_offset_t page_addr = trunc_page(from);
1115 
1116 	for (; page_addr < (vm_offset_t)to; page_addr += PAGE_SIZE) {
1117 #if !KASAN
1118 		/*
1119 		 * This can race with another thread doing a populate on the same metadata
1120 		 * page, where we see an updated pmap but unmapped KASan shadow, causing a
1121 		 * fault in the shadow when we first access the metadata page. Avoid this
1122 		 * by always synchronizing on the zone_metadata_region lock with KASan.
1123 		 */
1124 		if (pmap_find_phys(kernel_pmap, page_addr)) {
1125 			continue;
1126 		}
1127 #endif
1128 
1129 		for (;;) {
1130 			kern_return_t ret = KERN_SUCCESS;
1131 
1132 			/*
1133 			 * All updates to the zone_metadata_region are done
1134 			 * under the zone_metadata_region_lck
1135 			 */
1136 			zone_meta_lock();
1137 			if (0 == pmap_find_phys(kernel_pmap, page_addr)) {
1138 				ret = kernel_memory_populate(page_addr,
1139 				    PAGE_SIZE, KMA_NOPAGEWAIT | KMA_KOBJECT | KMA_ZERO,
1140 				    VM_KERN_MEMORY_OSFMK);
1141 			}
1142 			zone_meta_unlock();
1143 
1144 			if (ret == KERN_SUCCESS) {
1145 				break;
1146 			}
1147 
1148 			/*
1149 			 * We can't pass KMA_NOPAGEWAIT under a global lock as it leads
1150 			 * to bad system deadlocks, so if the allocation failed,
1151 			 * we need to do the VM_PAGE_WAIT() outside of the lock.
1152 			 */
1153 			VM_PAGE_WAIT();
1154 		}
1155 	}
1156 }
1157 
1158 __abortlike
1159 static void
zone_invalid_element_panic(zone_t zone,vm_offset_t addr)1160 zone_invalid_element_panic(zone_t zone, vm_offset_t addr)
1161 {
1162 	struct zone_page_metadata *meta;
1163 	const char *from_cache = "";
1164 	vm_offset_t page;
1165 
1166 	if (!from_zone_map(addr, zone_elem_inner_size(zone))) {
1167 		panic("addr %p being freed to zone %s%s%s, isn't from zone map",
1168 		    (void *)addr, zone_heap_name(zone), zone->z_name, from_cache);
1169 	}
1170 	page = trunc_page(addr);
1171 	meta = zone_meta_from_addr(addr);
1172 
1173 	if (!zone_has_index(zone, meta->zm_index)) {
1174 		zone_page_metadata_index_confusion_panic(zone, addr, meta);
1175 	}
1176 
1177 	if (meta->zm_chunk_len == ZM_SECONDARY_PCPU_PAGE) {
1178 		panic("metadata %p corresponding to addr %p being freed to "
1179 		    "zone %s%s%s, is marked as secondary per cpu page",
1180 		    meta, (void *)addr, zone_heap_name(zone), zone->z_name,
1181 		    from_cache);
1182 	}
1183 	if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
1184 		page -= ptoa(meta->zm_page_index);
1185 		meta -= meta->zm_page_index;
1186 	}
1187 
1188 	if (meta->zm_chunk_len > ZM_CHUNK_LEN_MAX) {
1189 		panic("metadata %p corresponding to addr %p being freed to "
1190 		    "zone %s%s%s, has chunk len greater than max",
1191 		    meta, (void *)addr, zone_heap_name(zone), zone->z_name,
1192 		    from_cache);
1193 	}
1194 
1195 	if ((addr - zone_elem_inner_offs(zone) - page) % zone_elem_outer_size(zone)) {
1196 		panic("addr %p being freed to zone %s%s%s, isn't aligned to "
1197 		    "zone element size", (void *)addr, zone_heap_name(zone),
1198 		    zone->z_name, from_cache);
1199 	}
1200 
1201 	zone_invalid_element_addr_panic(zone, addr);
1202 }
1203 
1204 __attribute__((always_inline))
1205 static struct zone_page_metadata *
zone_element_resolve(zone_t zone,vm_offset_t addr,vm_offset_t * idx)1206 zone_element_resolve(
1207 	zone_t                  zone,
1208 	vm_offset_t             addr,
1209 	vm_offset_t            *idx)
1210 {
1211 	struct zone_page_metadata *meta;
1212 	vm_offset_t offs, eidx;
1213 
1214 	meta = zone_meta_from_addr(addr);
1215 	if (!from_zone_map(addr, 1) || !zone_has_index(zone, meta->zm_index)) {
1216 		zone_invalid_element_panic(zone, addr);
1217 	}
1218 
1219 	offs = (addr & PAGE_MASK) - zone_elem_inner_offs(zone);
1220 	if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
1221 		offs += ptoa(meta->zm_page_index);
1222 		meta -= meta->zm_page_index;
1223 	}
1224 
1225 	eidx = Z_FAST_QUO(offs, zone->z_quo_magic);
1226 	if (eidx * zone_elem_outer_size(zone) != offs) {
1227 		zone_invalid_element_panic(zone, addr);
1228 	}
1229 
1230 	*idx = eidx;
1231 	return meta;
1232 }
1233 
1234 #if ZSECURITY_CONFIG(PGZ_OOB_ADJUST)
1235 void *
zone_element_pgz_oob_adjust(void * ptr,vm_size_t req_size,vm_size_t elem_size)1236 zone_element_pgz_oob_adjust(void *ptr, vm_size_t req_size, vm_size_t elem_size)
1237 {
1238 	vm_offset_t addr = (vm_offset_t)ptr;
1239 	vm_offset_t end = addr + elem_size;
1240 	vm_offset_t offs;
1241 
1242 	/*
1243 	 * 0-sized allocations in a KALLOC_MINSIZE bucket
1244 	 * would be offset to the next allocation which is incorrect.
1245 	 */
1246 	req_size = MAX(roundup(req_size, KALLOC_MINALIGN), KALLOC_MINALIGN);
1247 
1248 	/*
1249 	 * Given how chunks work, for a zone with PGZ guards on,
1250 	 * there's a single element which ends precisely
1251 	 * at the page boundary: the last one.
1252 	 */
1253 	if (req_size == elem_size ||
1254 	    (end & PAGE_MASK) ||
1255 	    !zone_meta_from_addr(addr)->zm_guarded) {
1256 		return ptr;
1257 	}
1258 
1259 	offs = elem_size - req_size;
1260 	zone_meta_from_addr(end)->zm_oob_offs = (uint16_t)offs;
1261 
1262 	return (char *)addr + offs;
1263 }
1264 #endif /* !ZSECURITY_CONFIG(PGZ_OOB_ADJUST) */
1265 
1266 __abortlike
1267 static void
zone_element_bounds_check_panic(vm_address_t addr,vm_size_t len)1268 zone_element_bounds_check_panic(vm_address_t addr, vm_size_t len)
1269 {
1270 	struct zone_page_metadata *meta;
1271 	vm_offset_t offs, size, page;
1272 	zone_t      zone;
1273 
1274 	page = trunc_page(addr);
1275 	meta = zone_meta_from_addr(addr);
1276 	zone = &zone_array[meta->zm_index];
1277 
1278 	if (zone->z_percpu) {
1279 		panic("zone bound checks: address %p is a per-cpu allocation",
1280 		    (void *)addr);
1281 	}
1282 
1283 	if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
1284 		page -= ptoa(meta->zm_page_index);
1285 		meta -= meta->zm_page_index;
1286 	}
1287 
1288 	size = zone_elem_outer_size(zone);
1289 	offs = Z_FAST_MOD(addr - zone_elem_inner_offs(zone) - page + size,
1290 	    zone->z_quo_magic, size);
1291 	panic("zone bound checks: buffer %p of length %zd overflows "
1292 	    "object %p of size %zd in zone %p[%s%s]",
1293 	    (void *)addr, len, (void *)(addr - offs - zone_elem_redzone(zone)),
1294 	    zone_elem_inner_size(zone), zone, zone_heap_name(zone), zone_name(zone));
1295 }
1296 
1297 void
zone_element_bounds_check(vm_address_t addr,vm_size_t len)1298 zone_element_bounds_check(vm_address_t addr, vm_size_t len)
1299 {
1300 	struct zone_page_metadata *meta;
1301 	vm_offset_t offs, size;
1302 	zone_t      zone;
1303 
1304 	if (!from_zone_map(addr, 1)) {
1305 		return;
1306 	}
1307 
1308 #if CONFIG_PROB_GZALLOC
1309 	if (__improbable(pgz_owned(addr))) {
1310 		meta = zone_meta_from_addr(addr);
1311 		addr = trunc_page(meta->zm_pgz_orig_addr) + (addr & PAGE_MASK);
1312 	}
1313 #endif /* CONFIG_PROB_GZALLOC */
1314 	meta = zone_meta_from_addr(addr);
1315 	zone = zone_by_id(meta->zm_index);
1316 
1317 	if (zone->z_percpu) {
1318 		zone_element_bounds_check_panic(addr, len);
1319 	}
1320 
1321 	if (zone->z_permanent) {
1322 		/* We don't know bounds for those */
1323 		return;
1324 	}
1325 
1326 	offs = (addr & PAGE_MASK) - zone_elem_inner_offs(zone);
1327 	if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
1328 		offs += ptoa(meta->zm_page_index);
1329 	}
1330 	size = zone_elem_outer_size(zone);
1331 	offs = Z_FAST_MOD(offs + size, zone->z_quo_magic, size);
1332 	if (len + zone_elem_redzone(zone) > size - offs) {
1333 		zone_element_bounds_check_panic(addr, len);
1334 	}
1335 }
1336 
1337 /*
1338  * Routine to get the size of a zone allocated address.
1339  * If the address doesnt belong to the zone maps, returns 0.
1340  */
1341 vm_size_t
zone_element_size(void * elem,zone_t * z,bool clear_oob,vm_offset_t * oob_offs)1342 zone_element_size(void *elem, zone_t *z, bool clear_oob, vm_offset_t *oob_offs)
1343 {
1344 	vm_address_t addr = (vm_address_t)elem;
1345 	struct zone_page_metadata *meta;
1346 	vm_size_t esize, offs, end;
1347 	zone_t zone;
1348 
1349 	if (from_zone_map(addr, sizeof(void *))) {
1350 		meta  = zone_meta_from_addr(addr);
1351 		zone  = zone_by_id(meta->zm_index);
1352 		esize = zone_elem_inner_size(zone);
1353 		end   = vm_memtag_canonicalize_address(addr + esize);
1354 		offs  = 0;
1355 
1356 #if ZSECURITY_CONFIG(PGZ_OOB_ADJUST)
1357 		/*
1358 		 * If the chunk uses guards, and that (addr + esize)
1359 		 * either crosses a page boundary or is at the boundary,
1360 		 * we need to look harder.
1361 		 */
1362 		if (oob_offs && meta->zm_guarded && atop(addr ^ end)) {
1363 			/*
1364 			 * Because in the vast majority of cases the element
1365 			 * size is sub-page, and that meta[1] must be faulted,
1366 			 * we can quickly peek at whether it's a guard.
1367 			 *
1368 			 * For elements larger than a page, finding the guard
1369 			 * page requires a little more effort.
1370 			 */
1371 			if (meta[1].zm_chunk_len == ZM_PGZ_GUARD) {
1372 				offs = meta[1].zm_oob_offs;
1373 				if (clear_oob) {
1374 					meta[1].zm_oob_offs = 0;
1375 				}
1376 			} else if (esize > PAGE_SIZE) {
1377 				struct zone_page_metadata *gmeta;
1378 
1379 				if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
1380 					gmeta = meta + meta->zm_subchunk_len;
1381 				} else {
1382 					gmeta = meta + zone->z_chunk_pages;
1383 				}
1384 				assert(gmeta->zm_chunk_len == ZM_PGZ_GUARD);
1385 
1386 				if (end >= zone_meta_to_addr(gmeta)) {
1387 					offs = gmeta->zm_oob_offs;
1388 					if (clear_oob) {
1389 						gmeta->zm_oob_offs = 0;
1390 					}
1391 				}
1392 			}
1393 		}
1394 #else
1395 #pragma unused(end, clear_oob)
1396 #endif /* ZSECURITY_CONFIG(PGZ_OOB_ADJUST) */
1397 
1398 		if (oob_offs) {
1399 			*oob_offs = offs;
1400 		}
1401 		if (z) {
1402 			*z = zone;
1403 		}
1404 		return esize;
1405 	}
1406 
1407 	if (oob_offs) {
1408 		*oob_offs = 0;
1409 	}
1410 
1411 	return 0;
1412 }
1413 
1414 zone_id_t
zone_id_for_element(void * addr,vm_size_t esize)1415 zone_id_for_element(void *addr, vm_size_t esize)
1416 {
1417 	zone_id_t zid = ZONE_ID_INVALID;
1418 	if (from_zone_map(addr, esize)) {
1419 		zid = zone_index_from_ptr(addr);
1420 		__builtin_assume(zid != ZONE_ID_INVALID);
1421 	}
1422 	return zid;
1423 }
1424 
1425 /* This function just formats the reason for the panics by redoing the checks */
1426 __abortlike
1427 static void
zone_require_panic(zone_t zone,void * addr)1428 zone_require_panic(zone_t zone, void *addr)
1429 {
1430 	uint32_t zindex;
1431 	zone_t other;
1432 
1433 	if (!from_zone_map(addr, zone_elem_inner_size(zone))) {
1434 		panic("zone_require failed: address not in a zone (addr: %p)", addr);
1435 	}
1436 
1437 	zindex = zone_index_from_ptr(addr);
1438 	other = &zone_array[zindex];
1439 	if (zindex >= os_atomic_load(&num_zones, relaxed) || !other->z_self) {
1440 		panic("zone_require failed: invalid zone index %d "
1441 		    "(addr: %p, expected: %s%s)", zindex,
1442 		    addr, zone_heap_name(zone), zone->z_name);
1443 	} else {
1444 		panic("zone_require failed: address in unexpected zone id %d (%s%s) "
1445 		    "(addr: %p, expected: %s%s)",
1446 		    zindex, zone_heap_name(other), other->z_name,
1447 		    addr, zone_heap_name(zone), zone->z_name);
1448 	}
1449 }
1450 
1451 __abortlike
1452 static void
zone_id_require_panic(zone_id_t zid,void * addr)1453 zone_id_require_panic(zone_id_t zid, void *addr)
1454 {
1455 	zone_require_panic(&zone_array[zid], addr);
1456 }
1457 
1458 /*
1459  * Routines to panic if a pointer is not mapped to an expected zone.
1460  * This can be used as a means of pinning an object to the zone it is expected
1461  * to be a part of.  Causes a panic if the address does not belong to any
1462  * specified zone, does not belong to any zone, has been freed and therefore
1463  * unmapped from the zone, or the pointer contains an uninitialized value that
1464  * does not belong to any zone.
1465  */
1466 void
zone_require(zone_t zone,void * addr)1467 zone_require(zone_t zone, void *addr)
1468 {
1469 	vm_size_t esize = zone_elem_inner_size(zone);
1470 
1471 	if (from_zone_map(addr, esize) &&
1472 	    zone_has_index(zone, zone_index_from_ptr(addr))) {
1473 		return;
1474 	}
1475 	zone_require_panic(zone, addr);
1476 }
1477 
1478 void
zone_id_require(zone_id_t zid,vm_size_t esize,void * addr)1479 zone_id_require(zone_id_t zid, vm_size_t esize, void *addr)
1480 {
1481 	if (from_zone_map(addr, esize) && zid == zone_index_from_ptr(addr)) {
1482 		return;
1483 	}
1484 	zone_id_require_panic(zid, addr);
1485 }
1486 
1487 void
zone_id_require_aligned(zone_id_t zid,void * addr)1488 zone_id_require_aligned(zone_id_t zid, void *addr)
1489 {
1490 	zone_t zone = zone_by_id(zid);
1491 	vm_offset_t elem, offs;
1492 
1493 	elem = (vm_offset_t)addr;
1494 	offs = (elem & PAGE_MASK) - zone_elem_inner_offs(zone);
1495 
1496 	if (from_zone_map(addr, 1)) {
1497 		struct zone_page_metadata *meta;
1498 
1499 		meta = zone_meta_from_addr(elem);
1500 		if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
1501 			offs += ptoa(meta->zm_page_index);
1502 		}
1503 
1504 		if (zid == meta->zm_index &&
1505 		    Z_FAST_ALIGNED(offs, zone->z_align_magic)) {
1506 			return;
1507 		}
1508 	}
1509 
1510 	zone_invalid_element_panic(zone, elem);
1511 }
1512 
1513 bool
zone_owns(zone_t zone,void * addr)1514 zone_owns(zone_t zone, void *addr)
1515 {
1516 	vm_size_t esize = zone_elem_inner_size(zone);
1517 
1518 	if (from_zone_map(addr, esize)) {
1519 		return zone_has_index(zone, zone_index_from_ptr(addr));
1520 	}
1521 	return false;
1522 }
1523 
1524 static inline struct mach_vm_range
zone_kmem_suballoc(mach_vm_offset_t addr,vm_size_t size,int flags,vm_tag_t tag,vm_map_t * new_map)1525 zone_kmem_suballoc(
1526 	mach_vm_offset_t        addr,
1527 	vm_size_t               size,
1528 	int                     flags,
1529 	vm_tag_t                tag,
1530 	vm_map_t                *new_map)
1531 {
1532 	struct mach_vm_range r;
1533 
1534 	*new_map = kmem_suballoc(kernel_map, &addr, size,
1535 	    VM_MAP_CREATE_NEVER_FAULTS | VM_MAP_CREATE_DISABLE_HOLELIST,
1536 	    flags, KMS_PERMANENT | KMS_NOFAIL, tag).kmr_submap;
1537 
1538 	r.min_address = addr;
1539 	r.max_address = addr + size;
1540 	return r;
1541 }
1542 
1543 #endif /* !ZALLOC_TEST */
1544 #pragma mark Zone bits allocator
1545 
1546 /*!
1547  * @defgroup Zone Bitmap allocator
1548  * @{
1549  *
1550  * @brief
1551  * Functions implementing the zone bitmap allocator
1552  *
1553  * @discussion
1554  * The zone allocator maintains which elements are allocated or free in bitmaps.
1555  *
1556  * When the number of elements per page is smaller than 32, it is stored inline
1557  * on the @c zone_page_metadata structure (@c zm_inline_bitmap is set,
1558  * and @c zm_bitmap used for storage).
1559  *
1560  * When the number of elements is larger, then a bitmap is allocated from
1561  * a buddy allocator (impelemented under the @c zba_* namespace). Pointers
1562  * to bitmaps are implemented as a packed 32 bit bitmap reference, stored in
1563  * @c zm_bitmap. The low 3 bits encode the scale (order) of the allocation in
1564  * @c ZBA_GRANULE units, and hence actual allocations encoded with that scheme
1565  * cannot be larger than 1024 bytes (8192 bits).
1566  *
1567  * This buddy allocator can actually accomodate allocations as large
1568  * as 8k on 16k systems and 2k on 4k systems.
1569  *
1570  * Note: @c zba_* functions are implementation details not meant to be used
1571  * outside of the allocation of the allocator itself. Interfaces to the rest of
1572  * the zone allocator are documented and not @c zba_* prefixed.
1573  */
1574 
1575 #define ZBA_CHUNK_SIZE          PAGE_MAX_SIZE
1576 #define ZBA_GRANULE             sizeof(uint64_t)
1577 #define ZBA_GRANULE_BITS        (8 * sizeof(uint64_t))
1578 #define ZBA_MAX_ORDER           (PAGE_MAX_SHIFT - 4)
1579 #define ZBA_MAX_ALLOC_ORDER     7
1580 #define ZBA_SLOTS               (ZBA_CHUNK_SIZE / ZBA_GRANULE)
1581 #define ZBA_HEADS_COUNT         (ZBA_MAX_ORDER + 1)
1582 #define ZBA_PTR_MASK            0x0fffffff
1583 #define ZBA_ORDER_SHIFT         29
1584 #define ZBA_HAS_EXTRA_BIT       0x10000000
1585 
1586 static_assert(2ul * ZBA_GRANULE << ZBA_MAX_ORDER == ZBA_CHUNK_SIZE, "chunk sizes");
1587 static_assert(ZBA_MAX_ALLOC_ORDER <= ZBA_MAX_ORDER, "ZBA_MAX_ORDER is enough");
1588 
1589 struct zone_bits_chain {
1590 	uint32_t zbc_next;
1591 	uint32_t zbc_prev;
1592 } __attribute__((aligned(ZBA_GRANULE)));
1593 
1594 struct zone_bits_head {
1595 	uint32_t zbh_next;
1596 	uint32_t zbh_unused;
1597 } __attribute__((aligned(ZBA_GRANULE)));
1598 
1599 static_assert(sizeof(struct zone_bits_chain) == ZBA_GRANULE, "zbc size");
1600 static_assert(sizeof(struct zone_bits_head) == ZBA_GRANULE, "zbh size");
1601 
1602 struct zone_bits_allocator_meta {
1603 	uint32_t  zbam_left;
1604 	uint32_t  zbam_right;
1605 	struct zone_bits_head zbam_lists[ZBA_HEADS_COUNT];
1606 	struct zone_bits_head zbam_lists_with_extra[ZBA_HEADS_COUNT];
1607 };
1608 
1609 struct zone_bits_allocator_header {
1610 	uint64_t zbah_bits[ZBA_SLOTS / (8 * sizeof(uint64_t))];
1611 };
1612 
1613 #if ZALLOC_TEST
1614 static struct zalloc_bits_allocator_test_setup {
1615 	vm_offset_t zbats_base;
1616 	void      (*zbats_populate)(vm_address_t addr, vm_size_t size);
1617 } zba_test_info;
1618 
1619 static struct zone_bits_allocator_header *
zba_base_header(void)1620 zba_base_header(void)
1621 {
1622 	return (struct zone_bits_allocator_header *)zba_test_info.zbats_base;
1623 }
1624 
1625 static kern_return_t
zba_populate(uint32_t n,bool with_extra __unused)1626 zba_populate(uint32_t n, bool with_extra __unused)
1627 {
1628 	vm_address_t base = zba_test_info.zbats_base;
1629 	zba_test_info.zbats_populate(base + n * ZBA_CHUNK_SIZE, ZBA_CHUNK_SIZE);
1630 
1631 	return KERN_SUCCESS;
1632 }
1633 #else
1634 __startup_data __attribute__((aligned(ZBA_CHUNK_SIZE)))
1635 static uint8_t zba_chunk_startup[ZBA_CHUNK_SIZE];
1636 
1637 static SECURITY_READ_ONLY_LATE(uint8_t) zba_xtra_shift;
1638 static LCK_MTX_DECLARE(zba_mtx, &zone_locks_grp);
1639 
1640 static struct zone_bits_allocator_header *
zba_base_header(void)1641 zba_base_header(void)
1642 {
1643 	return (struct zone_bits_allocator_header *)zone_info.zi_bits_range.min_address;
1644 }
1645 
1646 static void
zba_lock(void)1647 zba_lock(void)
1648 {
1649 	lck_mtx_lock(&zba_mtx);
1650 }
1651 
1652 static void
zba_unlock(void)1653 zba_unlock(void)
1654 {
1655 	lck_mtx_unlock(&zba_mtx);
1656 }
1657 
1658 __abortlike
1659 static void
zba_memory_exhausted(void)1660 zba_memory_exhausted(void)
1661 {
1662 	uint64_t zsize = 0;
1663 	zone_t z = zone_find_largest(&zsize);
1664 	panic("zba_populate: out of bitmap space, "
1665 	    "likely due to memory leak in zone [%s%s] "
1666 	    "(%u%c, %d elements allocated)",
1667 	    zone_heap_name(z), zone_name(z),
1668 	    mach_vm_size_pretty(zsize), mach_vm_size_unit(zsize),
1669 	    zone_count_allocated(z));
1670 }
1671 
1672 
1673 static kern_return_t
zba_populate(uint32_t n,bool with_extra)1674 zba_populate(uint32_t n, bool with_extra)
1675 {
1676 	vm_size_t bits_size = ZBA_CHUNK_SIZE;
1677 	vm_size_t xtra_size = bits_size * CHAR_BIT << zba_xtra_shift;
1678 	vm_address_t bits_addr;
1679 	vm_address_t xtra_addr;
1680 	kern_return_t kr;
1681 
1682 	bits_addr = zone_info.zi_bits_range.min_address + n * bits_size;
1683 	xtra_addr = zone_info.zi_xtra_range.min_address + n * xtra_size;
1684 
1685 	kr = kernel_memory_populate(bits_addr, bits_size,
1686 	    KMA_ZERO | KMA_KOBJECT | KMA_NOPAGEWAIT,
1687 	    VM_KERN_MEMORY_OSFMK);
1688 	if (kr != KERN_SUCCESS) {
1689 		return kr;
1690 	}
1691 
1692 
1693 	if (with_extra) {
1694 		kr = kernel_memory_populate(xtra_addr, xtra_size,
1695 		    KMA_ZERO | KMA_KOBJECT | KMA_NOPAGEWAIT,
1696 		    VM_KERN_MEMORY_OSFMK);
1697 		if (kr != KERN_SUCCESS) {
1698 			kernel_memory_depopulate(bits_addr, bits_size,
1699 			    KMA_ZERO | KMA_KOBJECT | KMA_NOPAGEWAIT,
1700 			    VM_KERN_MEMORY_OSFMK);
1701 		}
1702 	}
1703 
1704 	return kr;
1705 }
1706 #endif
1707 
1708 __pure2
1709 static struct zone_bits_allocator_meta *
zba_meta(void)1710 zba_meta(void)
1711 {
1712 	return (struct zone_bits_allocator_meta *)&zba_base_header()[1];
1713 }
1714 
1715 __pure2
1716 static uint64_t *
zba_slot_base(void)1717 zba_slot_base(void)
1718 {
1719 	return (uint64_t *)zba_base_header();
1720 }
1721 
1722 __pure2
1723 static struct zone_bits_head *
zba_head(uint32_t order,bool with_extra)1724 zba_head(uint32_t order, bool with_extra)
1725 {
1726 	if (with_extra) {
1727 		return &zba_meta()->zbam_lists_with_extra[order];
1728 	} else {
1729 		return &zba_meta()->zbam_lists[order];
1730 	}
1731 }
1732 
1733 __pure2
1734 static uint32_t
zba_head_index(struct zone_bits_head * hd)1735 zba_head_index(struct zone_bits_head *hd)
1736 {
1737 	return (uint32_t)((uint64_t *)hd - zba_slot_base());
1738 }
1739 
1740 __pure2
1741 static struct zone_bits_chain *
zba_chain_for_index(uint32_t index)1742 zba_chain_for_index(uint32_t index)
1743 {
1744 	return (struct zone_bits_chain *)(zba_slot_base() + index);
1745 }
1746 
1747 __pure2
1748 static uint32_t
zba_chain_to_index(const struct zone_bits_chain * zbc)1749 zba_chain_to_index(const struct zone_bits_chain *zbc)
1750 {
1751 	return (uint32_t)((const uint64_t *)zbc - zba_slot_base());
1752 }
1753 
1754 __abortlike
1755 static void
zba_head_corruption_panic(uint32_t order,bool with_extra)1756 zba_head_corruption_panic(uint32_t order, bool with_extra)
1757 {
1758 	panic("zone bits allocator head[%d:%d:%p] is corrupt",
1759 	    order, with_extra, zba_head(order, with_extra));
1760 }
1761 
1762 __abortlike
1763 static void
zba_chain_corruption_panic(struct zone_bits_chain * a,struct zone_bits_chain * b)1764 zba_chain_corruption_panic(struct zone_bits_chain *a, struct zone_bits_chain *b)
1765 {
1766 	panic("zone bits allocator freelist is corrupt (%p <-> %p)", a, b);
1767 }
1768 
1769 static void
zba_push_block(struct zone_bits_chain * zbc,uint32_t order,bool with_extra)1770 zba_push_block(struct zone_bits_chain *zbc, uint32_t order, bool with_extra)
1771 {
1772 	struct zone_bits_head *hd = zba_head(order, with_extra);
1773 	uint32_t hd_index = zba_head_index(hd);
1774 	uint32_t index = zba_chain_to_index(zbc);
1775 	struct zone_bits_chain *next;
1776 
1777 	if (hd->zbh_next) {
1778 		next = zba_chain_for_index(hd->zbh_next);
1779 		if (next->zbc_prev != hd_index) {
1780 			zba_head_corruption_panic(order, with_extra);
1781 		}
1782 		next->zbc_prev = index;
1783 	}
1784 	zbc->zbc_next = hd->zbh_next;
1785 	zbc->zbc_prev = hd_index;
1786 	hd->zbh_next = index;
1787 }
1788 
1789 static void
zba_remove_block(struct zone_bits_chain * zbc)1790 zba_remove_block(struct zone_bits_chain *zbc)
1791 {
1792 	struct zone_bits_chain *prev = zba_chain_for_index(zbc->zbc_prev);
1793 	uint32_t index = zba_chain_to_index(zbc);
1794 
1795 	if (prev->zbc_next != index) {
1796 		zba_chain_corruption_panic(prev, zbc);
1797 	}
1798 	if ((prev->zbc_next = zbc->zbc_next)) {
1799 		struct zone_bits_chain *next = zba_chain_for_index(zbc->zbc_next);
1800 		if (next->zbc_prev != index) {
1801 			zba_chain_corruption_panic(zbc, next);
1802 		}
1803 		next->zbc_prev = zbc->zbc_prev;
1804 	}
1805 }
1806 
1807 static vm_address_t
zba_try_pop_block(uint32_t order,bool with_extra)1808 zba_try_pop_block(uint32_t order, bool with_extra)
1809 {
1810 	struct zone_bits_head *hd = zba_head(order, with_extra);
1811 	struct zone_bits_chain *zbc;
1812 
1813 	if (hd->zbh_next == 0) {
1814 		return 0;
1815 	}
1816 
1817 	zbc = zba_chain_for_index(hd->zbh_next);
1818 	zba_remove_block(zbc);
1819 	return (vm_address_t)zbc;
1820 }
1821 
1822 static struct zone_bits_allocator_header *
zba_header(vm_offset_t addr)1823 zba_header(vm_offset_t addr)
1824 {
1825 	addr &= -(vm_offset_t)ZBA_CHUNK_SIZE;
1826 	return (struct zone_bits_allocator_header *)addr;
1827 }
1828 
1829 static size_t
zba_node_parent(size_t node)1830 zba_node_parent(size_t node)
1831 {
1832 	return (node - 1) / 2;
1833 }
1834 
1835 static size_t
zba_node_left_child(size_t node)1836 zba_node_left_child(size_t node)
1837 {
1838 	return node * 2 + 1;
1839 }
1840 
1841 static size_t
zba_node_buddy(size_t node)1842 zba_node_buddy(size_t node)
1843 {
1844 	return ((node - 1) ^ 1) + 1;
1845 }
1846 
1847 static size_t
zba_node(vm_offset_t addr,uint32_t order)1848 zba_node(vm_offset_t addr, uint32_t order)
1849 {
1850 	vm_offset_t offs = (addr % ZBA_CHUNK_SIZE) / ZBA_GRANULE;
1851 	return (offs >> order) + (1 << (ZBA_MAX_ORDER - order + 1)) - 1;
1852 }
1853 
1854 static struct zone_bits_chain *
zba_chain_for_node(struct zone_bits_allocator_header * zbah,size_t node,uint32_t order)1855 zba_chain_for_node(struct zone_bits_allocator_header *zbah, size_t node, uint32_t order)
1856 {
1857 	vm_offset_t offs = (node - (1 << (ZBA_MAX_ORDER - order + 1)) + 1) << order;
1858 	return (struct zone_bits_chain *)((vm_offset_t)zbah + offs * ZBA_GRANULE);
1859 }
1860 
1861 static void
zba_node_flip_split(struct zone_bits_allocator_header * zbah,size_t node)1862 zba_node_flip_split(struct zone_bits_allocator_header *zbah, size_t node)
1863 {
1864 	zbah->zbah_bits[node / 64] ^= 1ull << (node % 64);
1865 }
1866 
1867 static bool
zba_node_is_split(struct zone_bits_allocator_header * zbah,size_t node)1868 zba_node_is_split(struct zone_bits_allocator_header *zbah, size_t node)
1869 {
1870 	return zbah->zbah_bits[node / 64] & (1ull << (node % 64));
1871 }
1872 
1873 static void
zba_free(vm_offset_t addr,uint32_t order,bool with_extra)1874 zba_free(vm_offset_t addr, uint32_t order, bool with_extra)
1875 {
1876 	struct zone_bits_allocator_header *zbah = zba_header(addr);
1877 	struct zone_bits_chain *zbc;
1878 	size_t node = zba_node(addr, order);
1879 
1880 	while (node) {
1881 		size_t parent = zba_node_parent(node);
1882 
1883 		zba_node_flip_split(zbah, parent);
1884 		if (zba_node_is_split(zbah, parent)) {
1885 			break;
1886 		}
1887 
1888 		zbc = zba_chain_for_node(zbah, zba_node_buddy(node), order);
1889 		zba_remove_block(zbc);
1890 		order++;
1891 		node = parent;
1892 	}
1893 
1894 	zba_push_block(zba_chain_for_node(zbah, node, order), order, with_extra);
1895 }
1896 
1897 static vm_size_t
zba_chunk_header_size(uint32_t n)1898 zba_chunk_header_size(uint32_t n)
1899 {
1900 	vm_size_t hdr_size = sizeof(struct zone_bits_allocator_header);
1901 	if (n == 0) {
1902 		hdr_size += sizeof(struct zone_bits_allocator_meta);
1903 	}
1904 	return hdr_size;
1905 }
1906 
1907 static void
zba_init_chunk(uint32_t n,bool with_extra)1908 zba_init_chunk(uint32_t n, bool with_extra)
1909 {
1910 	vm_size_t hdr_size = zba_chunk_header_size(n);
1911 	vm_offset_t page = (vm_offset_t)zba_base_header() + n * ZBA_CHUNK_SIZE;
1912 	struct zone_bits_allocator_header *zbah = zba_header(page);
1913 	vm_size_t size = ZBA_CHUNK_SIZE;
1914 	size_t node;
1915 
1916 	for (uint32_t o = ZBA_MAX_ORDER + 1; o-- > 0;) {
1917 		if (size < hdr_size + (ZBA_GRANULE << o)) {
1918 			continue;
1919 		}
1920 		size -= ZBA_GRANULE << o;
1921 		node = zba_node(page + size, o);
1922 		zba_node_flip_split(zbah, zba_node_parent(node));
1923 		zba_push_block(zba_chain_for_node(zbah, node, o), o, with_extra);
1924 	}
1925 }
1926 
1927 __attribute__((noinline))
1928 static void
zba_grow(bool with_extra)1929 zba_grow(bool with_extra)
1930 {
1931 	struct zone_bits_allocator_meta *meta = zba_meta();
1932 	kern_return_t kr = KERN_SUCCESS;
1933 	uint32_t chunk;
1934 
1935 #if !ZALLOC_TEST
1936 	if (meta->zbam_left >= meta->zbam_right) {
1937 		zba_memory_exhausted();
1938 	}
1939 #endif
1940 
1941 	if (with_extra) {
1942 		chunk = meta->zbam_right - 1;
1943 	} else {
1944 		chunk = meta->zbam_left;
1945 	}
1946 
1947 	kr = zba_populate(chunk, with_extra);
1948 	if (kr == KERN_SUCCESS) {
1949 		if (with_extra) {
1950 			meta->zbam_right -= 1;
1951 		} else {
1952 			meta->zbam_left += 1;
1953 		}
1954 
1955 		zba_init_chunk(chunk, with_extra);
1956 #if !ZALLOC_TEST
1957 	} else {
1958 		/*
1959 		 * zba_populate() has to be allowed to fail populating,
1960 		 * as we are under a global lock, we need to do the
1961 		 * VM_PAGE_WAIT() outside of the lock.
1962 		 */
1963 		assert(kr == KERN_RESOURCE_SHORTAGE);
1964 		zba_unlock();
1965 		VM_PAGE_WAIT();
1966 		zba_lock();
1967 #endif
1968 	}
1969 }
1970 
1971 static vm_offset_t
zba_alloc(uint32_t order,bool with_extra)1972 zba_alloc(uint32_t order, bool with_extra)
1973 {
1974 	struct zone_bits_allocator_header *zbah;
1975 	uint32_t cur = order;
1976 	vm_address_t addr;
1977 	size_t node;
1978 
1979 	while ((addr = zba_try_pop_block(cur, with_extra)) == 0) {
1980 		if (__improbable(cur++ >= ZBA_MAX_ORDER)) {
1981 			zba_grow(with_extra);
1982 			cur = order;
1983 		}
1984 	}
1985 
1986 	zbah = zba_header(addr);
1987 	node = zba_node(addr, cur);
1988 	zba_node_flip_split(zbah, zba_node_parent(node));
1989 	while (cur > order) {
1990 		cur--;
1991 		zba_node_flip_split(zbah, node);
1992 		node = zba_node_left_child(node);
1993 		zba_push_block(zba_chain_for_node(zbah, node + 1, cur),
1994 		    cur, with_extra);
1995 	}
1996 
1997 	return addr;
1998 }
1999 
2000 #define zba_map_index(type, n)    (n / (8 * sizeof(type)))
2001 #define zba_map_bit(type, n)      ((type)1 << (n % (8 * sizeof(type))))
2002 #define zba_map_mask_lt(type, n)  (zba_map_bit(type, n) - 1)
2003 #define zba_map_mask_ge(type, n)  ((type)-zba_map_bit(type, n))
2004 
2005 #if !ZALLOC_TEST
2006 #if VM_TAG_SIZECLASSES
2007 
2008 static void *
zba_extra_ref_ptr(uint32_t bref,vm_offset_t idx)2009 zba_extra_ref_ptr(uint32_t bref, vm_offset_t idx)
2010 {
2011 	vm_offset_t base = zone_info.zi_xtra_range.min_address;
2012 	vm_offset_t offs = (bref & ZBA_PTR_MASK) * ZBA_GRANULE * CHAR_BIT;
2013 
2014 	return (void *)(base + ((offs + idx) << zba_xtra_shift));
2015 }
2016 
2017 #endif /* VM_TAG_SIZECLASSES */
2018 
2019 static uint32_t
zba_bits_ref_order(uint32_t bref)2020 zba_bits_ref_order(uint32_t bref)
2021 {
2022 	return bref >> ZBA_ORDER_SHIFT;
2023 }
2024 
2025 static bitmap_t *
zba_bits_ref_ptr(uint32_t bref)2026 zba_bits_ref_ptr(uint32_t bref)
2027 {
2028 	return zba_slot_base() + (bref & ZBA_PTR_MASK);
2029 }
2030 
2031 static vm_offset_t
zba_scan_bitmap_inline(zone_t zone,struct zone_page_metadata * meta,zalloc_flags_t flags,vm_offset_t eidx)2032 zba_scan_bitmap_inline(zone_t zone, struct zone_page_metadata *meta,
2033     zalloc_flags_t flags, vm_offset_t eidx)
2034 {
2035 	size_t i = eidx / 32;
2036 	uint32_t map;
2037 
2038 	if (eidx % 32) {
2039 		map = meta[i].zm_bitmap & zba_map_mask_ge(uint32_t, eidx);
2040 		if (map) {
2041 			eidx = __builtin_ctz(map);
2042 			meta[i].zm_bitmap ^= 1u << eidx;
2043 			return i * 32 + eidx;
2044 		}
2045 		i++;
2046 	}
2047 
2048 	uint32_t chunk_len = meta->zm_chunk_len;
2049 	if (flags & Z_PCPU) {
2050 		chunk_len = zpercpu_count();
2051 	}
2052 	for (int j = 0; j < chunk_len; j++, i++) {
2053 		if (i >= chunk_len) {
2054 			i = 0;
2055 		}
2056 		if (__probable(map = meta[i].zm_bitmap)) {
2057 			meta[i].zm_bitmap &= map - 1;
2058 			return i * 32 + __builtin_ctz(map);
2059 		}
2060 	}
2061 
2062 	zone_page_meta_accounting_panic(zone, meta, "zm_bitmap");
2063 }
2064 
2065 static vm_offset_t
zba_scan_bitmap_ref(zone_t zone,struct zone_page_metadata * meta,vm_offset_t eidx)2066 zba_scan_bitmap_ref(zone_t zone, struct zone_page_metadata *meta,
2067     vm_offset_t eidx)
2068 {
2069 	uint32_t bits_size = 1 << zba_bits_ref_order(meta->zm_bitmap);
2070 	bitmap_t *bits = zba_bits_ref_ptr(meta->zm_bitmap);
2071 	size_t i = eidx / 64;
2072 	uint64_t map;
2073 
2074 	if (eidx % 64) {
2075 		map = bits[i] & zba_map_mask_ge(uint64_t, eidx);
2076 		if (map) {
2077 			eidx = __builtin_ctzll(map);
2078 			bits[i] ^= 1ull << eidx;
2079 			return i * 64 + eidx;
2080 		}
2081 		i++;
2082 	}
2083 
2084 	for (int j = 0; j < bits_size; i++, j++) {
2085 		if (i >= bits_size) {
2086 			i = 0;
2087 		}
2088 		if (__probable(map = bits[i])) {
2089 			bits[i] &= map - 1;
2090 			return i * 64 + __builtin_ctzll(map);
2091 		}
2092 	}
2093 
2094 	zone_page_meta_accounting_panic(zone, meta, "zm_bitmap");
2095 }
2096 
2097 /*!
2098  * @function zone_meta_find_and_clear_bit
2099  *
2100  * @brief
2101  * The core of the bitmap allocator: find a bit set in the bitmaps.
2102  *
2103  * @discussion
2104  * This method will round robin through available allocations,
2105  * with a per-core memory of the last allocated element index allocated.
2106  *
2107  * This is done in order to avoid a fully LIFO behavior which makes exploiting
2108  * double-free bugs way too practical.
2109  *
2110  * @param zone          The zone we're allocating from.
2111  * @param meta          The main metadata for the chunk being allocated from.
2112  * @param flags         the alloc flags (for @c Z_PCPU).
2113  */
2114 static vm_offset_t
zone_meta_find_and_clear_bit(zone_t zone,zone_stats_t zs,struct zone_page_metadata * meta,zalloc_flags_t flags)2115 zone_meta_find_and_clear_bit(
2116 	zone_t                  zone,
2117 	zone_stats_t            zs,
2118 	struct zone_page_metadata *meta,
2119 	zalloc_flags_t          flags)
2120 {
2121 	vm_offset_t eidx = zs->zs_alloc_rr + 1;
2122 
2123 	if (meta->zm_inline_bitmap) {
2124 		eidx = zba_scan_bitmap_inline(zone, meta, flags, eidx);
2125 	} else {
2126 		eidx = zba_scan_bitmap_ref(zone, meta, eidx);
2127 	}
2128 	zs->zs_alloc_rr = (uint16_t)eidx;
2129 	return eidx;
2130 }
2131 
2132 /*!
2133  * @function zone_meta_bits_init_inline
2134  *
2135  * @brief
2136  * Initializes the inline zm_bitmap field(s) for a newly assigned chunk.
2137  *
2138  * @param meta          The main metadata for the initialized chunk.
2139  * @param count         The number of elements the chunk can hold
2140  *                      (which might be partial for partially populated chunks).
2141  */
2142 static void
zone_meta_bits_init_inline(struct zone_page_metadata * meta,uint32_t count)2143 zone_meta_bits_init_inline(struct zone_page_metadata *meta, uint32_t count)
2144 {
2145 	/*
2146 	 * We're called with the metadata zm_bitmap fields already zeroed out.
2147 	 */
2148 	for (size_t i = 0; i < count / 32; i++) {
2149 		meta[i].zm_bitmap = ~0u;
2150 	}
2151 	if (count % 32) {
2152 		meta[count / 32].zm_bitmap = zba_map_mask_lt(uint32_t, count);
2153 	}
2154 }
2155 
2156 /*!
2157  * @function zone_meta_bits_alloc_init
2158  *
2159  * @brief
2160  * Allocates a  zm_bitmap field for a newly assigned chunk.
2161  *
2162  * @param count         The number of elements the chunk can hold
2163  *                      (which might be partial for partially populated chunks).
2164  * @param nbits         The maximum nuber of bits that will be used.
2165  * @param with_extra    Whether "VM Tracking" metadata needs to be allocated.
2166  */
2167 static uint32_t
zone_meta_bits_alloc_init(uint32_t count,uint32_t nbits,bool with_extra)2168 zone_meta_bits_alloc_init(uint32_t count, uint32_t nbits, bool with_extra)
2169 {
2170 	static_assert(ZONE_MAX_ALLOC_SIZE / ZONE_MIN_ELEM_SIZE <=
2171 	    ZBA_GRANULE_BITS << ZBA_MAX_ORDER, "bitmaps will be large enough");
2172 
2173 	uint32_t order = flsll((nbits - 1) / ZBA_GRANULE_BITS);
2174 	uint64_t *bits;
2175 	size_t   i = 0;
2176 
2177 	assert(order <= ZBA_MAX_ALLOC_ORDER);
2178 	assert(count <= ZBA_GRANULE_BITS << order);
2179 
2180 	zba_lock();
2181 	bits = (uint64_t *)zba_alloc(order, with_extra);
2182 	zba_unlock();
2183 
2184 	while (i < count / 64) {
2185 		bits[i++] = ~0ull;
2186 	}
2187 	if (count % 64) {
2188 		bits[i++] = zba_map_mask_lt(uint64_t, count);
2189 	}
2190 	while (i < 1u << order) {
2191 		bits[i++] = 0;
2192 	}
2193 
2194 	return (uint32_t)(bits - zba_slot_base()) +
2195 	       (order << ZBA_ORDER_SHIFT) +
2196 	       (with_extra ? ZBA_HAS_EXTRA_BIT : 0);
2197 }
2198 
2199 /*!
2200  * @function zone_meta_bits_merge
2201  *
2202  * @brief
2203  * Adds elements <code>[start, end)</code> to a chunk being extended.
2204  *
2205  * @param meta          The main metadata for the extended chunk.
2206  * @param start         The index of the first element to add to the chunk.
2207  * @param end           The index of the last (exclusive) element to add.
2208  */
2209 static void
zone_meta_bits_merge(struct zone_page_metadata * meta,uint32_t start,uint32_t end)2210 zone_meta_bits_merge(struct zone_page_metadata *meta,
2211     uint32_t start, uint32_t end)
2212 {
2213 	if (meta->zm_inline_bitmap) {
2214 		while (start < end) {
2215 			size_t s_i = start / 32;
2216 			size_t s_e = end / 32;
2217 
2218 			if (s_i == s_e) {
2219 				meta[s_i].zm_bitmap |= zba_map_mask_lt(uint32_t, end) &
2220 				    zba_map_mask_ge(uint32_t, start);
2221 				break;
2222 			}
2223 
2224 			meta[s_i].zm_bitmap |= zba_map_mask_ge(uint32_t, start);
2225 			start += 32 - (start % 32);
2226 		}
2227 	} else {
2228 		uint64_t *bits = zba_bits_ref_ptr(meta->zm_bitmap);
2229 
2230 		while (start < end) {
2231 			size_t s_i = start / 64;
2232 			size_t s_e = end / 64;
2233 
2234 			if (s_i == s_e) {
2235 				bits[s_i] |= zba_map_mask_lt(uint64_t, end) &
2236 				    zba_map_mask_ge(uint64_t, start);
2237 				break;
2238 			}
2239 			bits[s_i] |= zba_map_mask_ge(uint64_t, start);
2240 			start += 64 - (start % 64);
2241 		}
2242 	}
2243 }
2244 
2245 /*!
2246  * @function zone_bits_free
2247  *
2248  * @brief
2249  * Frees a bitmap to the zone bitmap allocator.
2250  *
2251  * @param bref
2252  * A bitmap reference set by @c zone_meta_bits_init() in a @c zm_bitmap field.
2253  */
2254 static void
zone_bits_free(uint32_t bref)2255 zone_bits_free(uint32_t bref)
2256 {
2257 	zba_lock();
2258 	zba_free((vm_offset_t)zba_bits_ref_ptr(bref),
2259 	    zba_bits_ref_order(bref), (bref & ZBA_HAS_EXTRA_BIT));
2260 	zba_unlock();
2261 }
2262 
2263 /*!
2264  * @function zone_meta_is_free
2265  *
2266  * @brief
2267  * Returns whether a given element appears free.
2268  */
2269 static bool
zone_meta_is_free(struct zone_page_metadata * meta,vm_offset_t eidx)2270 zone_meta_is_free(struct zone_page_metadata *meta, vm_offset_t eidx)
2271 {
2272 	if (meta->zm_inline_bitmap) {
2273 		uint32_t bit = zba_map_bit(uint32_t, eidx);
2274 		return meta[zba_map_index(uint32_t, eidx)].zm_bitmap & bit;
2275 	} else {
2276 		bitmap_t *bits = zba_bits_ref_ptr(meta->zm_bitmap);
2277 		uint64_t bit = zba_map_bit(uint64_t, eidx);
2278 		return bits[zba_map_index(uint64_t, eidx)] & bit;
2279 	}
2280 }
2281 
2282 /*!
2283  * @function zone_meta_mark_free
2284  *
2285  * @brief
2286  * Marks an element as free and returns whether it was marked as used.
2287  */
2288 static bool
zone_meta_mark_free(struct zone_page_metadata * meta,vm_offset_t eidx)2289 zone_meta_mark_free(struct zone_page_metadata *meta, vm_offset_t eidx)
2290 {
2291 	if (meta->zm_inline_bitmap) {
2292 		uint32_t bit = zba_map_bit(uint32_t, eidx);
2293 		if (meta[zba_map_index(uint32_t, eidx)].zm_bitmap & bit) {
2294 			return false;
2295 		}
2296 		meta[zba_map_index(uint32_t, eidx)].zm_bitmap ^= bit;
2297 	} else {
2298 		bitmap_t *bits = zba_bits_ref_ptr(meta->zm_bitmap);
2299 		uint64_t bit = zba_map_bit(uint64_t, eidx);
2300 		if (bits[zba_map_index(uint64_t, eidx)] & bit) {
2301 			return false;
2302 		}
2303 		bits[zba_map_index(uint64_t, eidx)] ^= bit;
2304 	}
2305 	return true;
2306 }
2307 
2308 #if VM_TAG_SIZECLASSES
2309 
2310 __startup_func
2311 void
__zone_site_register(vm_allocation_site_t * site)2312 __zone_site_register(vm_allocation_site_t *site)
2313 {
2314 	if (zone_tagging_on) {
2315 		vm_tag_alloc(site);
2316 	}
2317 }
2318 
2319 uint16_t
zone_index_from_tag_index(uint32_t sizeclass_idx)2320 zone_index_from_tag_index(uint32_t sizeclass_idx)
2321 {
2322 	return zone_tags_sizeclasses[sizeclass_idx];
2323 }
2324 
2325 #endif /* VM_TAG_SIZECLASSES */
2326 #endif /* !ZALLOC_TEST */
2327 /*! @} */
2328 #pragma mark zalloc helpers
2329 #if !ZALLOC_TEST
2330 
2331 static inline void *
zstack_tbi_fix(vm_offset_t elem)2332 zstack_tbi_fix(vm_offset_t elem)
2333 {
2334 	elem = vm_memtag_fixup_ptr(elem);
2335 	return (void *)elem;
2336 }
2337 
2338 static inline vm_offset_t
zstack_tbi_fill(void * addr)2339 zstack_tbi_fill(void *addr)
2340 {
2341 	vm_offset_t elem = (vm_offset_t)addr;
2342 
2343 	return vm_memtag_canonicalize_address(elem);
2344 }
2345 
2346 __attribute__((always_inline))
2347 static inline void
zstack_push_no_delta(zstack_t * stack,void * addr)2348 zstack_push_no_delta(zstack_t *stack, void *addr)
2349 {
2350 	vm_offset_t elem = zstack_tbi_fill(addr);
2351 
2352 	*(vm_offset_t *)addr = stack->z_head - elem;
2353 	stack->z_head = elem;
2354 }
2355 
2356 __attribute__((always_inline))
2357 void
zstack_push(zstack_t * stack,void * addr)2358 zstack_push(zstack_t *stack, void *addr)
2359 {
2360 	zstack_push_no_delta(stack, addr);
2361 	stack->z_count++;
2362 }
2363 
2364 __attribute__((always_inline))
2365 static inline void *
zstack_pop_no_delta(zstack_t * stack)2366 zstack_pop_no_delta(zstack_t *stack)
2367 {
2368 	void *addr = zstack_tbi_fix(stack->z_head);
2369 
2370 	stack->z_head += *(vm_offset_t *)addr;
2371 	*(vm_offset_t *)addr = 0;
2372 
2373 	return addr;
2374 }
2375 
2376 __attribute__((always_inline))
2377 void *
zstack_pop(zstack_t * stack)2378 zstack_pop(zstack_t *stack)
2379 {
2380 	stack->z_count--;
2381 	return zstack_pop_no_delta(stack);
2382 }
2383 
2384 static inline void
zone_recirc_lock_nopreempt_check_contention(zone_t zone)2385 zone_recirc_lock_nopreempt_check_contention(zone_t zone)
2386 {
2387 	uint32_t ticket;
2388 
2389 	if (__probable(hw_lck_ticket_reserve_nopreempt(&zone->z_recirc_lock,
2390 	    &ticket, &zone_locks_grp))) {
2391 		return;
2392 	}
2393 
2394 	hw_lck_ticket_wait(&zone->z_recirc_lock, ticket, NULL, &zone_locks_grp);
2395 
2396 	/*
2397 	 * If zone caching has been disabled due to memory pressure,
2398 	 * then recording contention is not useful, give the system
2399 	 * time to recover.
2400 	 */
2401 	if (__probable(!zone_caching_disabled && !zone_exhausted(zone))) {
2402 		zone->z_recirc_cont_cur++;
2403 	}
2404 }
2405 
2406 static inline void
zone_recirc_lock_nopreempt(zone_t zone)2407 zone_recirc_lock_nopreempt(zone_t zone)
2408 {
2409 	hw_lck_ticket_lock_nopreempt(&zone->z_recirc_lock, &zone_locks_grp);
2410 }
2411 
2412 static inline void
zone_recirc_unlock_nopreempt(zone_t zone)2413 zone_recirc_unlock_nopreempt(zone_t zone)
2414 {
2415 	hw_lck_ticket_unlock_nopreempt(&zone->z_recirc_lock);
2416 }
2417 
2418 static inline void
zone_lock_nopreempt_check_contention(zone_t zone)2419 zone_lock_nopreempt_check_contention(zone_t zone)
2420 {
2421 	uint32_t ticket;
2422 #if KASAN_FAKESTACK
2423 	spl_t s = 0;
2424 	if (zone->z_kasan_fakestacks) {
2425 		s = splsched();
2426 	}
2427 #endif /* KASAN_FAKESTACK */
2428 
2429 	if (__probable(hw_lck_ticket_reserve_nopreempt(&zone->z_lock, &ticket,
2430 	    &zone_locks_grp))) {
2431 #if KASAN_FAKESTACK
2432 		zone->z_kasan_spl = s;
2433 #endif /* KASAN_FAKESTACK */
2434 		return;
2435 	}
2436 
2437 	hw_lck_ticket_wait(&zone->z_lock, ticket, NULL, &zone_locks_grp);
2438 #if KASAN_FAKESTACK
2439 	zone->z_kasan_spl = s;
2440 #endif /* KASAN_FAKESTACK */
2441 
2442 	/*
2443 	 * If zone caching has been disabled due to memory pressure,
2444 	 * then recording contention is not useful, give the system
2445 	 * time to recover.
2446 	 */
2447 	if (__probable(!zone_caching_disabled &&
2448 	    !zone->z_pcpu_cache && !zone_exhausted(zone))) {
2449 		zone->z_recirc_cont_cur++;
2450 	}
2451 }
2452 
2453 static inline void
zone_lock_nopreempt(zone_t zone)2454 zone_lock_nopreempt(zone_t zone)
2455 {
2456 #if KASAN_FAKESTACK
2457 	spl_t s = 0;
2458 	if (zone->z_kasan_fakestacks) {
2459 		s = splsched();
2460 	}
2461 #endif /* KASAN_FAKESTACK */
2462 	hw_lck_ticket_lock_nopreempt(&zone->z_lock, &zone_locks_grp);
2463 #if KASAN_FAKESTACK
2464 	zone->z_kasan_spl = s;
2465 #endif /* KASAN_FAKESTACK */
2466 }
2467 
2468 static inline void
zone_unlock_nopreempt(zone_t zone)2469 zone_unlock_nopreempt(zone_t zone)
2470 {
2471 #if KASAN_FAKESTACK
2472 	spl_t s = zone->z_kasan_spl;
2473 	zone->z_kasan_spl = 0;
2474 #endif /* KASAN_FAKESTACK */
2475 	hw_lck_ticket_unlock_nopreempt(&zone->z_lock);
2476 #if KASAN_FAKESTACK
2477 	if (zone->z_kasan_fakestacks) {
2478 		splx(s);
2479 	}
2480 #endif /* KASAN_FAKESTACK */
2481 }
2482 
2483 static inline void
zone_depot_lock_nopreempt(zone_cache_t zc)2484 zone_depot_lock_nopreempt(zone_cache_t zc)
2485 {
2486 	hw_lck_ticket_lock_nopreempt(&zc->zc_depot_lock, &zone_locks_grp);
2487 }
2488 
2489 static inline void
zone_depot_unlock_nopreempt(zone_cache_t zc)2490 zone_depot_unlock_nopreempt(zone_cache_t zc)
2491 {
2492 	hw_lck_ticket_unlock_nopreempt(&zc->zc_depot_lock);
2493 }
2494 
2495 static inline void
zone_depot_lock(zone_cache_t zc)2496 zone_depot_lock(zone_cache_t zc)
2497 {
2498 	hw_lck_ticket_lock(&zc->zc_depot_lock, &zone_locks_grp);
2499 }
2500 
2501 static inline void
zone_depot_unlock(zone_cache_t zc)2502 zone_depot_unlock(zone_cache_t zc)
2503 {
2504 	hw_lck_ticket_unlock(&zc->zc_depot_lock);
2505 }
2506 
2507 zone_t
zone_by_id(size_t zid)2508 zone_by_id(size_t zid)
2509 {
2510 	return (zone_t)((uintptr_t)zone_array + zid * sizeof(struct zone));
2511 }
2512 
2513 static inline bool
zone_supports_vm(zone_t z)2514 zone_supports_vm(zone_t z)
2515 {
2516 	/*
2517 	 * VM_MAP_ENTRY and VM_MAP_HOLES zones are allowed
2518 	 * to overcommit because they're used to reclaim memory
2519 	 * (VM support).
2520 	 */
2521 	return z >= &zone_array[ZONE_ID_VM_MAP_ENTRY] &&
2522 	       z <= &zone_array[ZONE_ID_VM_MAP_HOLES];
2523 }
2524 
2525 const char *
zone_name(zone_t z)2526 zone_name(zone_t z)
2527 {
2528 	return z->z_name;
2529 }
2530 
2531 const char *
zone_heap_name(zone_t z)2532 zone_heap_name(zone_t z)
2533 {
2534 	zone_security_flags_t zsflags = zone_security_config(z);
2535 	if (__probable(zsflags.z_kheap_id < KHEAP_ID_COUNT)) {
2536 		return kalloc_heap_names[zsflags.z_kheap_id];
2537 	}
2538 	return "invalid";
2539 }
2540 
2541 static uint32_t
zone_alloc_pages_for_nelems(zone_t z,vm_size_t max_elems)2542 zone_alloc_pages_for_nelems(zone_t z, vm_size_t max_elems)
2543 {
2544 	vm_size_t elem_count, chunks;
2545 
2546 	elem_count = ptoa(z->z_percpu ? 1 : z->z_chunk_pages) /
2547 	    zone_elem_outer_size(z);
2548 	chunks = (max_elems + elem_count - 1) / elem_count;
2549 
2550 	return (uint32_t)MIN(UINT32_MAX, chunks * z->z_chunk_pages);
2551 }
2552 
2553 static inline vm_size_t
zone_submaps_approx_size(void)2554 zone_submaps_approx_size(void)
2555 {
2556 	vm_size_t size = 0;
2557 
2558 	for (unsigned idx = 0; idx < Z_SUBMAP_IDX_COUNT; idx++) {
2559 		if (zone_submaps[idx] != VM_MAP_NULL) {
2560 			size += zone_submaps[idx]->size;
2561 		}
2562 	}
2563 
2564 	return size;
2565 }
2566 
2567 static inline void
zone_depot_init(struct zone_depot * zd)2568 zone_depot_init(struct zone_depot *zd)
2569 {
2570 	*zd = (struct zone_depot){
2571 		.zd_tail = &zd->zd_head,
2572 	};
2573 }
2574 
2575 static inline void
zone_depot_insert_head_full(struct zone_depot * zd,zone_magazine_t mag)2576 zone_depot_insert_head_full(struct zone_depot *zd, zone_magazine_t mag)
2577 {
2578 	if (zd->zd_full++ == 0) {
2579 		zd->zd_tail = &mag->zm_next;
2580 	}
2581 	mag->zm_next = zd->zd_head;
2582 	zd->zd_head = mag;
2583 }
2584 
2585 static inline void
zone_depot_insert_tail_full(struct zone_depot * zd,zone_magazine_t mag)2586 zone_depot_insert_tail_full(struct zone_depot *zd, zone_magazine_t mag)
2587 {
2588 	zd->zd_full++;
2589 	mag->zm_next = *zd->zd_tail;
2590 	*zd->zd_tail = mag;
2591 	zd->zd_tail = &mag->zm_next;
2592 }
2593 
2594 static inline void
zone_depot_insert_head_empty(struct zone_depot * zd,zone_magazine_t mag)2595 zone_depot_insert_head_empty(struct zone_depot *zd, zone_magazine_t mag)
2596 {
2597 	zd->zd_empty++;
2598 	mag->zm_next = *zd->zd_tail;
2599 	*zd->zd_tail = mag;
2600 }
2601 
2602 static inline zone_magazine_t
zone_depot_pop_head_full(struct zone_depot * zd,zone_t z)2603 zone_depot_pop_head_full(struct zone_depot *zd, zone_t z)
2604 {
2605 	zone_magazine_t mag = zd->zd_head;
2606 
2607 	assert(zd->zd_full);
2608 
2609 	zd->zd_full--;
2610 	if (z && z->z_recirc_full_min > zd->zd_full) {
2611 		z->z_recirc_full_min = zd->zd_full;
2612 	}
2613 	zd->zd_head = mag->zm_next;
2614 	if (zd->zd_full == 0) {
2615 		zd->zd_tail = &zd->zd_head;
2616 	}
2617 
2618 	mag->zm_next = NULL;
2619 	return mag;
2620 }
2621 
2622 static inline zone_magazine_t
zone_depot_pop_head_empty(struct zone_depot * zd,zone_t z)2623 zone_depot_pop_head_empty(struct zone_depot *zd, zone_t z)
2624 {
2625 	zone_magazine_t mag = *zd->zd_tail;
2626 
2627 	assert(zd->zd_empty);
2628 
2629 	zd->zd_empty--;
2630 	if (z && z->z_recirc_empty_min > zd->zd_empty) {
2631 		z->z_recirc_empty_min = zd->zd_empty;
2632 	}
2633 	*zd->zd_tail = mag->zm_next;
2634 
2635 	mag->zm_next = NULL;
2636 	return mag;
2637 }
2638 
2639 static inline smr_seq_t
zone_depot_move_full(struct zone_depot * dst,struct zone_depot * src,uint32_t n,zone_t z)2640 zone_depot_move_full(
2641 	struct zone_depot      *dst,
2642 	struct zone_depot      *src,
2643 	uint32_t                n,
2644 	zone_t                  z)
2645 {
2646 	zone_magazine_t head, last;
2647 
2648 	assert(n);
2649 	assert(src->zd_full >= n);
2650 
2651 	src->zd_full -= n;
2652 	if (z && z->z_recirc_full_min > src->zd_full) {
2653 		z->z_recirc_full_min = src->zd_full;
2654 	}
2655 	head = last = src->zd_head;
2656 	for (uint32_t i = n; i-- > 1;) {
2657 		last = last->zm_next;
2658 	}
2659 
2660 	src->zd_head = last->zm_next;
2661 	if (src->zd_full == 0) {
2662 		src->zd_tail = &src->zd_head;
2663 	}
2664 
2665 	if (z && zone_security_array[zone_index(z)].z_lifo) {
2666 		if (dst->zd_full == 0) {
2667 			dst->zd_tail = &last->zm_next;
2668 		}
2669 		last->zm_next = dst->zd_head;
2670 		dst->zd_head = head;
2671 	} else {
2672 		last->zm_next = *dst->zd_tail;
2673 		*dst->zd_tail = head;
2674 		dst->zd_tail = &last->zm_next;
2675 	}
2676 	dst->zd_full += n;
2677 
2678 	return last->zm_seq;
2679 }
2680 
2681 static inline void
zone_depot_move_empty(struct zone_depot * dst,struct zone_depot * src,uint32_t n,zone_t z)2682 zone_depot_move_empty(
2683 	struct zone_depot      *dst,
2684 	struct zone_depot      *src,
2685 	uint32_t                n,
2686 	zone_t                  z)
2687 {
2688 	zone_magazine_t head, last;
2689 
2690 	assert(n);
2691 	assert(src->zd_empty >= n);
2692 
2693 	src->zd_empty -= n;
2694 	if (z && z->z_recirc_empty_min > src->zd_empty) {
2695 		z->z_recirc_empty_min = src->zd_empty;
2696 	}
2697 	head = last = *src->zd_tail;
2698 	for (uint32_t i = n; i-- > 1;) {
2699 		last = last->zm_next;
2700 	}
2701 
2702 	*src->zd_tail = last->zm_next;
2703 
2704 	dst->zd_empty += n;
2705 	last->zm_next = *dst->zd_tail;
2706 	*dst->zd_tail = head;
2707 }
2708 
2709 static inline bool
zone_depot_poll(struct zone_depot * depot,smr_t smr)2710 zone_depot_poll(struct zone_depot *depot, smr_t smr)
2711 {
2712 	if (depot->zd_full == 0) {
2713 		return false;
2714 	}
2715 
2716 	return smr == NULL || smr_poll(smr, depot->zd_head->zm_seq);
2717 }
2718 
2719 static void
zone_cache_swap_magazines(zone_cache_t cache)2720 zone_cache_swap_magazines(zone_cache_t cache)
2721 {
2722 	uint16_t count_a = cache->zc_alloc_cur;
2723 	uint16_t count_f = cache->zc_free_cur;
2724 	vm_offset_t *elems_a = cache->zc_alloc_elems;
2725 	vm_offset_t *elems_f = cache->zc_free_elems;
2726 
2727 	z_debug_assert(count_a <= zc_mag_size());
2728 	z_debug_assert(count_f <= zc_mag_size());
2729 
2730 	cache->zc_alloc_cur = count_f;
2731 	cache->zc_free_cur = count_a;
2732 	cache->zc_alloc_elems = elems_f;
2733 	cache->zc_free_elems = elems_a;
2734 }
2735 
2736 __pure2
2737 static smr_t
zone_cache_smr(zone_cache_t cache)2738 zone_cache_smr(zone_cache_t cache)
2739 {
2740 	return cache->zc_smr;
2741 }
2742 
2743 /*!
2744  * @function zone_magazine_replace
2745  *
2746  * @brief
2747  * Unlod a magazine and load a new one instead.
2748  */
2749 static zone_magazine_t
zone_magazine_replace(zone_cache_t zc,zone_magazine_t mag,bool empty)2750 zone_magazine_replace(zone_cache_t zc, zone_magazine_t mag, bool empty)
2751 {
2752 	zone_magazine_t old;
2753 	vm_offset_t **elems;
2754 
2755 	mag->zm_seq = SMR_SEQ_INVALID;
2756 
2757 	if (empty) {
2758 		elems = &zc->zc_free_elems;
2759 		zc->zc_free_cur = 0;
2760 	} else {
2761 		elems = &zc->zc_alloc_elems;
2762 		zc->zc_alloc_cur = zc_mag_size();
2763 	}
2764 	old = (zone_magazine_t)((uintptr_t)*elems -
2765 	    offsetof(struct zone_magazine, zm_elems));
2766 	*elems = mag->zm_elems;
2767 
2768 	return old;
2769 }
2770 
2771 static zone_magazine_t
zone_magazine_alloc(zalloc_flags_t flags)2772 zone_magazine_alloc(zalloc_flags_t flags)
2773 {
2774 	return zalloc_flags(zc_magazine_zone, flags | Z_ZERO);
2775 }
2776 
2777 static void
zone_magazine_free(zone_magazine_t mag)2778 zone_magazine_free(zone_magazine_t mag)
2779 {
2780 	(zfree)(zc_magazine_zone, mag);
2781 }
2782 
2783 static void
zone_magazine_free_list(struct zone_depot * zd)2784 zone_magazine_free_list(struct zone_depot *zd)
2785 {
2786 	zone_magazine_t tmp, mag = *zd->zd_tail;
2787 
2788 	while (mag) {
2789 		tmp = mag->zm_next;
2790 		zone_magazine_free(mag);
2791 		mag = tmp;
2792 	}
2793 
2794 	*zd->zd_tail = NULL;
2795 	zd->zd_empty = 0;
2796 }
2797 
2798 void
zone_enable_caching(zone_t zone)2799 zone_enable_caching(zone_t zone)
2800 {
2801 	size_t size_per_mag = zone_elem_inner_size(zone) * zc_mag_size();
2802 	zone_cache_t caches;
2803 	size_t depot_limit;
2804 
2805 	depot_limit = zc_pcpu_max() / size_per_mag;
2806 	zone->z_depot_limit = (uint16_t)MIN(depot_limit, INT16_MAX);
2807 
2808 	caches = zalloc_percpu_permanent_type(struct zone_cache);
2809 	zpercpu_foreach(zc, caches) {
2810 		zc->zc_alloc_elems = zone_magazine_alloc(Z_WAITOK | Z_NOFAIL)->zm_elems;
2811 		zc->zc_free_elems = zone_magazine_alloc(Z_WAITOK | Z_NOFAIL)->zm_elems;
2812 		zone_depot_init(&zc->zc_depot);
2813 		hw_lck_ticket_init(&zc->zc_depot_lock, &zone_locks_grp);
2814 	}
2815 
2816 	zone_lock(zone);
2817 	assert(zone->z_pcpu_cache == NULL);
2818 	zone->z_pcpu_cache = caches;
2819 	zone->z_recirc_cont_cur = 0;
2820 	zone->z_recirc_cont_wma = 0;
2821 	zone->z_elems_free_min = 0; /* becomes z_recirc_empty_min */
2822 	zone->z_elems_free_wma = 0; /* becomes z_recirc_empty_wma */
2823 	zone_unlock(zone);
2824 }
2825 
2826 bool
zone_maps_owned(vm_address_t addr,vm_size_t size)2827 zone_maps_owned(vm_address_t addr, vm_size_t size)
2828 {
2829 	return from_zone_map(addr, size);
2830 }
2831 
2832 #if KASAN_LIGHT
2833 bool
kasan_zone_maps_owned(vm_address_t addr,vm_size_t size)2834 kasan_zone_maps_owned(vm_address_t addr, vm_size_t size)
2835 {
2836 	return from_zone_map(addr, size) ||
2837 	       mach_vm_range_size(&zone_info.zi_map_range) == 0;
2838 }
2839 #endif /* KASAN_LIGHT */
2840 
2841 void
zone_map_sizes(vm_map_size_t * psize,vm_map_size_t * pfree,vm_map_size_t * plargest_free)2842 zone_map_sizes(
2843 	vm_map_size_t    *psize,
2844 	vm_map_size_t    *pfree,
2845 	vm_map_size_t    *plargest_free)
2846 {
2847 	vm_map_size_t size, free, largest;
2848 
2849 	vm_map_sizes(zone_submaps[0], psize, pfree, plargest_free);
2850 
2851 	for (uint32_t i = 1; i < Z_SUBMAP_IDX_COUNT; i++) {
2852 		vm_map_sizes(zone_submaps[i], &size, &free, &largest);
2853 		*psize += size;
2854 		*pfree += free;
2855 		*plargest_free = MAX(*plargest_free, largest);
2856 	}
2857 }
2858 
2859 __attribute__((always_inline))
2860 vm_map_t
zone_submap(zone_security_flags_t zsflags)2861 zone_submap(zone_security_flags_t zsflags)
2862 {
2863 	return zone_submaps[zsflags.z_submap_idx];
2864 }
2865 
2866 unsigned
zpercpu_count(void)2867 zpercpu_count(void)
2868 {
2869 	return zpercpu_early_count;
2870 }
2871 
2872 #if ZSECURITY_CONFIG(SAD_FENG_SHUI) || CONFIG_PROB_GZALLOC
2873 /*
2874  * Returns a random number of a given bit-width.
2875  *
2876  * DO NOT COPY THIS CODE OUTSIDE OF ZALLOC
2877  *
2878  * This uses Intel's rdrand because random() uses FP registers
2879  * which causes FP faults and allocations which isn't something
2880  * we can do from zalloc itself due to reentrancy problems.
2881  *
2882  * For pre-rdrand machines (which we no longer support),
2883  * we use a bad biased random generator that doesn't use FP.
2884  * Such HW is no longer supported, but VM of newer OSes on older
2885  * bare metal is made to limp along (with reduced security) this way.
2886  */
2887 static uint64_t
zalloc_random_mask64(uint32_t bits)2888 zalloc_random_mask64(uint32_t bits)
2889 {
2890 	uint64_t mask = ~0ull >> (64 - bits);
2891 	uint64_t v;
2892 
2893 #if __x86_64__
2894 	if (__probable(cpuid_features() & CPUID_FEATURE_RDRAND)) {
2895 		asm volatile ("1: rdrand %0; jnc 1b\n" : "=r" (v) :: "cc");
2896 		v &= mask;
2897 	} else {
2898 		disable_preemption();
2899 		int cpu = cpu_number();
2900 		v = random_bool_gen_bits(&zone_bool_gen[cpu].zbg_bg,
2901 		    zone_bool_gen[cpu].zbg_entropy,
2902 		    ZONE_ENTROPY_CNT, bits);
2903 		enable_preemption();
2904 	}
2905 #else
2906 	v = early_random() & mask;
2907 #endif
2908 
2909 	return v;
2910 }
2911 
2912 /*
2913  * Returns a random number within [bound_min, bound_max)
2914  *
2915  * This isn't _exactly_ uniform, but the skew is small enough
2916  * not to matter for the consumers of this interface.
2917  *
2918  * Values within [bound_min, 2^64 % (bound_max - bound_min))
2919  * will be returned (bound_max - bound_min) / 2^64 more often
2920  * than values within [2^64 % (bound_max - bound_min), bound_max).
2921  */
2922 static uint32_t
zalloc_random_uniform32(uint32_t bound_min,uint32_t bound_max)2923 zalloc_random_uniform32(uint32_t bound_min, uint32_t bound_max)
2924 {
2925 	uint64_t delta = bound_max - bound_min;
2926 
2927 	return bound_min + (uint32_t)(zalloc_random_mask64(64) % delta);
2928 }
2929 
2930 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) || CONFIG_PROB_GZALLOC */
2931 #if ZALLOC_ENABLE_LOGGING || CONFIG_PROB_GZALLOC
2932 /*
2933  * Track all kalloc zones of specified size for zlog name
2934  * kalloc.type.<size> or kalloc.type.var.<size> or kalloc.<size>
2935  *
2936  * Additionally track all shared kalloc zones with shared.kalloc
2937  */
2938 static bool
track_kalloc_zones(zone_t z,const char * logname)2939 track_kalloc_zones(zone_t z, const char *logname)
2940 {
2941 	const char *prefix;
2942 	size_t len;
2943 	zone_security_flags_t zsflags = zone_security_config(z);
2944 
2945 	prefix = "kalloc.type.var.";
2946 	len    = strlen(prefix);
2947 	if (zsflags.z_kalloc_type && zsflags.z_kheap_id == KHEAP_ID_KT_VAR &&
2948 	    strncmp(logname, prefix, len) == 0) {
2949 		vm_size_t sizeclass = strtoul(logname + len, NULL, 0);
2950 
2951 		return zone_elem_inner_size(z) == sizeclass;
2952 	}
2953 
2954 	prefix = "kalloc.type.";
2955 	len    = strlen(prefix);
2956 	if (zsflags.z_kalloc_type && zsflags.z_kheap_id != KHEAP_ID_KT_VAR &&
2957 	    strncmp(logname, prefix, len) == 0) {
2958 		vm_size_t sizeclass = strtoul(logname + len, NULL, 0);
2959 
2960 		return zone_elem_inner_size(z) == sizeclass;
2961 	}
2962 
2963 	prefix = "kalloc.";
2964 	len    = strlen(prefix);
2965 	if ((zsflags.z_kheap_id || zsflags.z_kalloc_type) &&
2966 	    strncmp(logname, prefix, len) == 0) {
2967 		vm_size_t sizeclass = strtoul(logname + len, NULL, 0);
2968 
2969 		return zone_elem_inner_size(z) == sizeclass;
2970 	}
2971 
2972 	prefix = "shared.kalloc";
2973 	if ((zsflags.z_kheap_id == KHEAP_ID_SHARED) &&
2974 	    (strcmp(logname, prefix) == 0)) {
2975 		return true;
2976 	}
2977 
2978 	return false;
2979 }
2980 #endif
2981 
2982 int
track_this_zone(const char * zonename,const char * logname)2983 track_this_zone(const char *zonename, const char *logname)
2984 {
2985 	unsigned int len;
2986 	const char *zc = zonename;
2987 	const char *lc = logname;
2988 
2989 	/*
2990 	 * Compare the strings.  We bound the compare by MAX_ZONE_NAME.
2991 	 */
2992 
2993 	for (len = 1; len <= MAX_ZONE_NAME; zc++, lc++, len++) {
2994 		/*
2995 		 * If the current characters don't match, check for a space in
2996 		 * in the zone name and a corresponding period in the log name.
2997 		 * If that's not there, then the strings don't match.
2998 		 */
2999 
3000 		if (*zc != *lc && !(*zc == ' ' && *lc == '.')) {
3001 			break;
3002 		}
3003 
3004 		/*
3005 		 * The strings are equal so far.  If we're at the end, then it's a match.
3006 		 */
3007 
3008 		if (*zc == '\0') {
3009 			return TRUE;
3010 		}
3011 	}
3012 
3013 	return FALSE;
3014 }
3015 
3016 #if DEBUG || DEVELOPMENT
3017 
3018 vm_size_t
zone_element_info(void * addr,vm_tag_t * ptag)3019 zone_element_info(void *addr, vm_tag_t * ptag)
3020 {
3021 	vm_size_t     size = 0;
3022 	vm_tag_t      tag = VM_KERN_MEMORY_NONE;
3023 	struct zone *src_zone;
3024 
3025 	if (from_zone_map(addr, sizeof(void *))) {
3026 		src_zone = zone_by_id(zone_index_from_ptr(addr));
3027 		size     = zone_elem_inner_size(src_zone);
3028 #if VM_TAG_SIZECLASSES
3029 		if (__improbable(src_zone->z_uses_tags)) {
3030 			struct zone_page_metadata *meta;
3031 			vm_offset_t eidx;
3032 			vm_tag_t *slot;
3033 
3034 			meta = zone_element_resolve(src_zone,
3035 			    (vm_offset_t)addr, &eidx);
3036 			slot = zba_extra_ref_ptr(meta->zm_bitmap, eidx);
3037 			tag  = *slot;
3038 		}
3039 #endif /* VM_TAG_SIZECLASSES */
3040 	}
3041 
3042 	*ptag = tag;
3043 	return size;
3044 }
3045 
3046 #endif /* DEBUG || DEVELOPMENT */
3047 #if KASAN_CLASSIC
3048 
3049 vm_size_t
kasan_quarantine_resolve(vm_address_t addr,zone_t * zonep)3050 kasan_quarantine_resolve(vm_address_t addr, zone_t *zonep)
3051 {
3052 	zone_t zone = zone_by_id(zone_index_from_ptr((void *)addr));
3053 
3054 	*zonep = zone;
3055 	return zone_elem_inner_size(zone);
3056 }
3057 
3058 #endif /* KASAN_CLASSIC */
3059 #endif /* !ZALLOC_TEST */
3060 #pragma mark Zone zeroing and early random
3061 #if !ZALLOC_TEST
3062 
3063 /*
3064  * Zone zeroing
3065  *
3066  * All allocations from zones are zeroed on free and are additionally
3067  * check that they are still zero on alloc. The check is
3068  * always on, on embedded devices. Perf regression was detected
3069  * on intel as we cant use the vectorized implementation of
3070  * memcmp_zero_ptr_aligned due to cyclic dependenices between
3071  * initization and allocation. Therefore we perform the check
3072  * on 20% of the allocations.
3073  */
3074 #if ZALLOC_ENABLE_ZERO_CHECK
3075 #if defined(__x86_64__)
3076 /*
3077  * Peform zero validation on every 5th allocation
3078  */
3079 static TUNABLE(uint32_t, zzc_rate, "zzc_rate", 5);
3080 static uint32_t PERCPU_DATA(zzc_decrementer);
3081 #endif /* defined(__x86_64__) */
3082 
3083 /*
3084  * Determine if zero validation for allocation should be skipped
3085  */
3086 static bool
zalloc_skip_zero_check(void)3087 zalloc_skip_zero_check(void)
3088 {
3089 #if defined(__x86_64__)
3090 	uint32_t *counterp, cnt;
3091 
3092 	counterp = PERCPU_GET(zzc_decrementer);
3093 	cnt = *counterp;
3094 	if (__probable(cnt > 0)) {
3095 		*counterp  = cnt - 1;
3096 		return true;
3097 	}
3098 	*counterp = zzc_rate - 1;
3099 #endif /* !defined(__x86_64__) */
3100 	return false;
3101 }
3102 
3103 __abortlike
3104 static void
zalloc_uaf_panic(zone_t z,uintptr_t elem,size_t size)3105 zalloc_uaf_panic(zone_t z, uintptr_t elem, size_t size)
3106 {
3107 	uint32_t esize = (uint32_t)zone_elem_inner_size(z);
3108 	uint32_t first_offs = ~0u;
3109 	uintptr_t first_bits = 0, v;
3110 	char buf[1024];
3111 	int pos = 0;
3112 
3113 	buf[0] = '\0';
3114 
3115 	for (uint32_t o = 0; o < size; o += sizeof(v)) {
3116 		if ((v = *(uintptr_t *)(elem + o)) == 0) {
3117 			continue;
3118 		}
3119 		pos += scnprintf(buf + pos, sizeof(buf) - pos, "\n"
3120 		    "%5d: 0x%016lx", o, v);
3121 		if (first_offs > o) {
3122 			first_offs = o;
3123 			first_bits = v;
3124 		}
3125 	}
3126 
3127 	(panic)("[%s%s]: element modified after free "
3128 	"(off:%d, val:0x%016lx, sz:%d, ptr:%p)%s",
3129 	zone_heap_name(z), zone_name(z),
3130 	first_offs, first_bits, esize, (void *)elem, buf);
3131 }
3132 
3133 static void
zalloc_validate_element(zone_t zone,vm_offset_t elem,vm_size_t size,zalloc_flags_t flags)3134 zalloc_validate_element(
3135 	zone_t                  zone,
3136 	vm_offset_t             elem,
3137 	vm_size_t               size,
3138 	zalloc_flags_t          flags)
3139 {
3140 	if (flags & Z_NOZZC) {
3141 		return;
3142 	}
3143 	if (memcmp_zero_ptr_aligned((void *)elem, size)) {
3144 		zalloc_uaf_panic(zone, elem, size);
3145 	}
3146 	if (flags & Z_PCPU) {
3147 		for (size_t i = zpercpu_count(); --i > 0;) {
3148 			elem += PAGE_SIZE;
3149 			if (memcmp_zero_ptr_aligned((void *)elem, size)) {
3150 				zalloc_uaf_panic(zone, elem, size);
3151 			}
3152 		}
3153 	}
3154 }
3155 
3156 #endif /* ZALLOC_ENABLE_ZERO_CHECK */
3157 
3158 __attribute__((noinline))
3159 static void
zone_early_scramble_rr(zone_t zone,int cpu,zone_stats_t zs)3160 zone_early_scramble_rr(zone_t zone, int cpu, zone_stats_t zs)
3161 {
3162 #if KASAN_FAKESTACK
3163 	/*
3164 	 * This can cause re-entrancy with kasan fakestacks
3165 	 */
3166 #pragma unused(zone, cpu, zs)
3167 #else
3168 	uint32_t bits;
3169 
3170 	bits = random_bool_gen_bits(&zone_bool_gen[cpu].zbg_bg,
3171 	    zone_bool_gen[cpu].zbg_entropy, ZONE_ENTROPY_CNT, 8);
3172 
3173 	zs->zs_alloc_rr += bits;
3174 	zs->zs_alloc_rr %= zone->z_chunk_elems;
3175 #endif
3176 }
3177 
3178 #endif /* !ZALLOC_TEST */
3179 #pragma mark Zone Leak Detection
3180 #if !ZALLOC_TEST
3181 #if ZALLOC_ENABLE_LOGGING || CONFIG_ZLEAKS
3182 
3183 /*
3184  * Zone leak debugging code
3185  *
3186  * When enabled, this code keeps a log to track allocations to a particular
3187  * zone that have not yet been freed.
3188  *
3189  * Examining this log will reveal the source of a zone leak.
3190  *
3191  * The log is allocated only when logging is enabled (it is off by default),
3192  * so there is no effect on the system when it's turned off.
3193  *
3194  * Zone logging is enabled with the `zlog<n>=<zone>` boot-arg for each
3195  * zone name to log, with n starting at 1.
3196  *
3197  * Leaks debugging utilizes 2 tunables:
3198  * - zlsize (in kB) which describes how much "size" the record covers
3199  *   (zones with smaller elements get more records, default is 4M).
3200  *
3201  * - zlfreq (in bytes) which describes a sample rate in cumulative allocation
3202  *   size at which automatic leak detection will sample allocations.
3203  *   (default is 8k)
3204  *
3205  *
3206  * Zone corruption logging
3207  *
3208  * Logging can also be used to help identify the source of a zone corruption.
3209  *
3210  * First, identify the zone that is being corrupted,
3211  * then add "-zc zlog<n>=<zone name>" to the boot-args.
3212  *
3213  * When -zc is used in conjunction with zlog,
3214  * it changes the logging style to track both allocations and frees to the zone.
3215  *
3216  * When the corruption is detected, examining the log will show you the stack
3217  * traces of the callers who last allocated and freed any particular element in
3218  * the zone.
3219  *
3220  * Corruption debugging logs will have zrecs records
3221  * (tuned by the zrecs= boot-arg, 16k elements per G of RAM by default).
3222  */
3223 
3224 #define ZRECORDS_MAX            (256u << 10)
3225 #define ZRECORDS_DEFAULT        (16u  << 10)
3226 static TUNABLE(uint32_t, zrecs, "zrecs", 0);
3227 static TUNABLE(uint32_t, zlsize, "zlsize", 4 * 1024);
3228 static TUNABLE(uint32_t, zlfreq, "zlfreq", 8 * 1024);
3229 
3230 __startup_func
3231 static void
zone_leaks_init_zrecs(void)3232 zone_leaks_init_zrecs(void)
3233 {
3234 	/*
3235 	 * Don't allow more than ZRECORDS_MAX records,
3236 	 * even if the user asked for more.
3237 	 *
3238 	 * This prevents accidentally hogging too much kernel memory
3239 	 * and making the system unusable.
3240 	 */
3241 	if (zrecs == 0) {
3242 		zrecs = ZRECORDS_DEFAULT *
3243 		    (uint32_t)((max_mem + (1ul << 30)) >> 30);
3244 	}
3245 	if (zrecs > ZRECORDS_MAX) {
3246 		zrecs = ZRECORDS_MAX;
3247 	}
3248 }
3249 STARTUP(TUNABLES, STARTUP_RANK_MIDDLE, zone_leaks_init_zrecs);
3250 
3251 static uint32_t
zone_leaks_record_count(zone_t z)3252 zone_leaks_record_count(zone_t z)
3253 {
3254 	uint32_t recs = (zlsize << 10) / zone_elem_inner_size(z);
3255 
3256 	return MIN(MAX(recs, ZRECORDS_DEFAULT), ZRECORDS_MAX);
3257 }
3258 
3259 static uint32_t
zone_leaks_sample_rate(zone_t z)3260 zone_leaks_sample_rate(zone_t z)
3261 {
3262 	return zlfreq / zone_elem_inner_size(z);
3263 }
3264 
3265 #if ZALLOC_ENABLE_LOGGING
3266 /* Log allocations and frees to help debug a zone element corruption */
3267 static TUNABLE(bool, corruption_debug_flag, "-zc", false);
3268 
3269 /*
3270  * A maximum of 10 zlog<n> boot args can be provided (zlog1 -> zlog10)
3271  */
3272 #define MAX_ZONES_LOG_REQUESTS  10
3273 
3274 /**
3275  * @function zone_setup_logging
3276  *
3277  * @abstract
3278  * Optionally sets up a zone for logging.
3279  *
3280  * @discussion
3281  * We recognized two boot-args:
3282  *
3283  *	zlog=<zone_to_log>
3284  *	zrecs=<num_records_in_log>
3285  *	zlsize=<memory to cover for leaks>
3286  *
3287  * The zlog arg is used to specify the zone name that should be logged,
3288  * and zrecs/zlsize is used to control the size of the log.
3289  */
3290 static void
zone_setup_logging(zone_t z)3291 zone_setup_logging(zone_t z)
3292 {
3293 	char zone_name[MAX_ZONE_NAME]; /* Temp. buffer for the zone name */
3294 	char zlog_name[MAX_ZONE_NAME]; /* Temp. buffer to create the strings zlog1, zlog2 etc... */
3295 	char zlog_val[MAX_ZONE_NAME];  /* the zone name we're logging, if any */
3296 	bool logging_on = false;
3297 
3298 	/*
3299 	 * Append kalloc heap name to zone name (if zone is used by kalloc)
3300 	 */
3301 	snprintf(zone_name, MAX_ZONE_NAME, "%s%s", zone_heap_name(z), z->z_name);
3302 
3303 	/* zlog0 isn't allowed. */
3304 	for (int i = 1; i <= MAX_ZONES_LOG_REQUESTS; i++) {
3305 		snprintf(zlog_name, MAX_ZONE_NAME, "zlog%d", i);
3306 
3307 		if (PE_parse_boot_argn(zlog_name, zlog_val, sizeof(zlog_val))) {
3308 			if (track_this_zone(zone_name, zlog_val) ||
3309 			    track_kalloc_zones(z, zlog_val)) {
3310 				logging_on = true;
3311 				break;
3312 			}
3313 		}
3314 	}
3315 
3316 	/*
3317 	 * Backwards compat. with the old boot-arg used to specify single zone
3318 	 * logging i.e. zlog Needs to happen after the newer zlogn checks
3319 	 * because the prefix will match all the zlogn
3320 	 * boot-args.
3321 	 */
3322 	if (!logging_on &&
3323 	    PE_parse_boot_argn("zlog", zlog_val, sizeof(zlog_val))) {
3324 		if (track_this_zone(zone_name, zlog_val) ||
3325 		    track_kalloc_zones(z, zlog_val)) {
3326 			logging_on = true;
3327 		}
3328 	}
3329 
3330 	/*
3331 	 * If we want to log a zone, see if we need to allocate buffer space for
3332 	 * the log.
3333 	 *
3334 	 * Some vm related zones are zinit'ed before we can do a kmem_alloc, so
3335 	 * we have to defer allocation in that case.
3336 	 *
3337 	 * zone_init() will finish the job.
3338 	 *
3339 	 * If we want to log one of the VM related zones that's set up early on,
3340 	 * we will skip allocation of the log until zinit is called again later
3341 	 * on some other zone.
3342 	 */
3343 	if (logging_on) {
3344 		if (corruption_debug_flag) {
3345 			z->z_btlog = btlog_create(BTLOG_LOG, zrecs, 0);
3346 		} else {
3347 			z->z_btlog = btlog_create(BTLOG_HASH,
3348 			    zone_leaks_record_count(z), 0);
3349 		}
3350 		if (z->z_btlog) {
3351 			z->z_log_on = true;
3352 			printf("zone[%s%s]: logging enabled\n",
3353 			    zone_heap_name(z), z->z_name);
3354 		} else {
3355 			printf("zone[%s%s]: failed to enable logging\n",
3356 			    zone_heap_name(z), z->z_name);
3357 		}
3358 	}
3359 }
3360 
3361 #endif /* ZALLOC_ENABLE_LOGGING */
3362 #if KASAN_TBI
3363 static TUNABLE(uint32_t, kasan_zrecs, "kasan_zrecs", 0);
3364 
3365 __startup_func
3366 static void
kasan_tbi_init_zrecs(void)3367 kasan_tbi_init_zrecs(void)
3368 {
3369 	/*
3370 	 * Don't allow more than ZRECORDS_MAX records,
3371 	 * even if the user asked for more.
3372 	 *
3373 	 * This prevents accidentally hogging too much kernel memory
3374 	 * and making the system unusable.
3375 	 */
3376 	if (kasan_zrecs == 0) {
3377 		kasan_zrecs = ZRECORDS_DEFAULT *
3378 		    (uint32_t)((max_mem + (1ul << 30)) >> 30);
3379 	}
3380 	if (kasan_zrecs > ZRECORDS_MAX) {
3381 		kasan_zrecs = ZRECORDS_MAX;
3382 	}
3383 }
3384 STARTUP(TUNABLES, STARTUP_RANK_MIDDLE, kasan_tbi_init_zrecs);
3385 
3386 static void
zone_setup_kasan_logging(zone_t z)3387 zone_setup_kasan_logging(zone_t z)
3388 {
3389 	if (!z->z_tbi_tag) {
3390 		printf("zone[%s%s]: kasan logging disabled for this zone\n",
3391 		    zone_heap_name(z), z->z_name);
3392 		return;
3393 	}
3394 
3395 	z->z_log_on = true;
3396 	z->z_btlog = btlog_create(BTLOG_LOG, kasan_zrecs, 0);
3397 	if (!z->z_btlog) {
3398 		printf("zone[%s%s]: failed to enable kasan logging\n",
3399 		    zone_heap_name(z), z->z_name);
3400 	}
3401 }
3402 
3403 #endif /* KASAN_TBI */
3404 #if CONFIG_ZLEAKS
3405 
3406 static thread_call_data_t zone_leaks_callout;
3407 
3408 /*
3409  * The zone leak detector, abbreviated 'zleak', keeps track
3410  * of a subset of the currently outstanding allocations
3411  * made by the zone allocator.
3412  *
3413  * Zones who use more than zleak_pages_per_zone_wired_threshold
3414  * pages will get a BTLOG_HASH btlog with sampling to minimize
3415  * perf impact, yet receive statistical data about the backtrace
3416  * that is the most likely to cause the leak.
3417  *
3418  * If the zone goes under the threshold enough, then the log
3419  * is disabled and backtraces freed. Data can be collected
3420  * from userspace with the zlog(1) command.
3421  */
3422 
3423 uint32_t                zleak_active;
3424 SECURITY_READ_ONLY_LATE(vm_size_t) zleak_max_zonemap_size;
3425 
3426 /* Size a zone will have before we will collect data on it */
3427 static size_t           zleak_pages_per_zone_wired_threshold = ~0;
3428 vm_size_t               zleak_per_zone_tracking_threshold = ~0;
3429 
3430 static inline bool
zleak_should_enable_for_zone(zone_t z)3431 zleak_should_enable_for_zone(zone_t z)
3432 {
3433 	if (z->z_log_on) {
3434 		return false;
3435 	}
3436 	if (z->z_btlog) {
3437 		return false;
3438 	}
3439 	if (z->z_exhausts) {
3440 		return false;
3441 	}
3442 	if (zone_exhaustible(z)) {
3443 		return z->z_wired_cur * 8 >= z->z_wired_max * 7;
3444 	}
3445 	return z->z_wired_cur >= zleak_pages_per_zone_wired_threshold;
3446 }
3447 
3448 static inline bool
zleak_should_disable_for_zone(zone_t z)3449 zleak_should_disable_for_zone(zone_t z)
3450 {
3451 	if (z->z_log_on) {
3452 		return false;
3453 	}
3454 	if (!z->z_btlog) {
3455 		return false;
3456 	}
3457 	if (zone_exhaustible(z)) {
3458 		return z->z_wired_cur * 8 < z->z_wired_max * 7;
3459 	}
3460 	return z->z_wired_cur < zleak_pages_per_zone_wired_threshold / 2;
3461 }
3462 
3463 static void
zleaks_enable_async(__unused thread_call_param_t p0,__unused thread_call_param_t p1)3464 zleaks_enable_async(__unused thread_call_param_t p0, __unused thread_call_param_t p1)
3465 {
3466 	btlog_t log;
3467 
3468 	zone_foreach(z) {
3469 		if (zleak_should_disable_for_zone(z)) {
3470 			log = z->z_btlog;
3471 			z->z_btlog = NULL;
3472 			assert(z->z_btlog_disabled == NULL);
3473 			btlog_disable(log);
3474 			z->z_btlog_disabled = log;
3475 			os_atomic_dec(&zleak_active, relaxed);
3476 		}
3477 
3478 		if (zleak_should_enable_for_zone(z)) {
3479 			log = z->z_btlog_disabled;
3480 			if (log == NULL) {
3481 				log = btlog_create(BTLOG_HASH,
3482 				    zone_leaks_record_count(z),
3483 				    zone_leaks_sample_rate(z));
3484 			} else if (btlog_enable(log) == KERN_SUCCESS) {
3485 				z->z_btlog_disabled = NULL;
3486 			} else {
3487 				log = NULL;
3488 			}
3489 			os_atomic_store(&z->z_btlog, log, release);
3490 			os_atomic_inc(&zleak_active, relaxed);
3491 		}
3492 	}
3493 }
3494 
3495 __startup_func
3496 static void
zleak_init(void)3497 zleak_init(void)
3498 {
3499 	zleak_max_zonemap_size = ptoa(zone_pages_wired_max);
3500 
3501 	zleak_update_threshold(&zleak_per_zone_tracking_threshold,
3502 	    zleak_max_zonemap_size / 8);
3503 
3504 	thread_call_setup_with_options(&zone_leaks_callout,
3505 	    zleaks_enable_async, NULL, THREAD_CALL_PRIORITY_USER,
3506 	    THREAD_CALL_OPTIONS_ONCE);
3507 }
3508 STARTUP(ZALLOC, STARTUP_RANK_SECOND, zleak_init);
3509 
3510 kern_return_t
zleak_update_threshold(vm_size_t * arg,uint64_t value)3511 zleak_update_threshold(vm_size_t *arg, uint64_t value)
3512 {
3513 	if (value >= zleak_max_zonemap_size) {
3514 		return KERN_INVALID_VALUE;
3515 	}
3516 
3517 	if (arg == &zleak_per_zone_tracking_threshold) {
3518 		zleak_per_zone_tracking_threshold = (vm_size_t)value;
3519 		zleak_pages_per_zone_wired_threshold = atop(value);
3520 		if (startup_phase >= STARTUP_SUB_THREAD_CALL) {
3521 			thread_call_enter(&zone_leaks_callout);
3522 		}
3523 		return KERN_SUCCESS;
3524 	}
3525 
3526 	return KERN_INVALID_ARGUMENT;
3527 }
3528 
3529 static void
panic_display_zleaks(bool has_syms)3530 panic_display_zleaks(bool has_syms)
3531 {
3532 	bool did_header = false;
3533 	vm_address_t bt[BTLOG_MAX_DEPTH];
3534 	uint32_t len, count;
3535 
3536 	zone_foreach(z) {
3537 		btlog_t log = z->z_btlog;
3538 
3539 		if (log == NULL || btlog_get_type(log) != BTLOG_HASH) {
3540 			continue;
3541 		}
3542 
3543 		count = btlog_guess_top(log, bt, &len);
3544 		if (count == 0) {
3545 			continue;
3546 		}
3547 
3548 		if (!did_header) {
3549 			paniclog_append_noflush("Zone (suspected) leak report:\n");
3550 			did_header = true;
3551 		}
3552 
3553 		paniclog_append_noflush("  Zone:    %s%s\n",
3554 		    zone_heap_name(z), zone_name(z));
3555 		paniclog_append_noflush("  Count:   %d (%ld bytes)\n", count,
3556 		    (long)count * zone_scale_for_percpu(z, zone_elem_inner_size(z)));
3557 		paniclog_append_noflush("  Size:    %ld\n",
3558 		    (long)zone_size_wired(z));
3559 		paniclog_append_noflush("  Top backtrace:\n");
3560 		for (uint32_t i = 0; i < len; i++) {
3561 			if (has_syms) {
3562 				paniclog_append_noflush("    %p ", (void *)bt[i]);
3563 				panic_print_symbol_name(bt[i]);
3564 				paniclog_append_noflush("\n");
3565 			} else {
3566 				paniclog_append_noflush("    %p\n", (void *)bt[i]);
3567 			}
3568 		}
3569 
3570 		kmod_panic_dump(bt, len);
3571 		paniclog_append_noflush("\n");
3572 	}
3573 }
3574 #endif /* CONFIG_ZLEAKS */
3575 
3576 #endif /* ZONE_ENABLE_LOGGING || CONFIG_ZLEAKS */
3577 #if ZONE_ENABLE_LOGGING || CONFIG_ZLEAKS || KASAN_TBI
3578 
3579 #if !KASAN_TBI
3580 __cold
3581 #endif
3582 static void
zalloc_log(zone_t zone,vm_offset_t addr,uint32_t count,void * fp)3583 zalloc_log(zone_t zone, vm_offset_t addr, uint32_t count, void *fp)
3584 {
3585 	btlog_t log = zone->z_btlog;
3586 	btref_get_flags_t flags = 0;
3587 	btref_t ref;
3588 
3589 #if !KASAN_TBI
3590 	if (!log || !btlog_sample(log)) {
3591 		return;
3592 	}
3593 #endif
3594 	if (get_preemption_level() || zone_supports_vm(zone)) {
3595 		/*
3596 		 * VM zones can be used by btlog, avoid reentrancy issues.
3597 		 */
3598 		flags = BTREF_GET_NOWAIT;
3599 	}
3600 
3601 	ref = btref_get(fp, flags);
3602 	while (count-- > 0) {
3603 		if (count) {
3604 			btref_retain(ref);
3605 		}
3606 		btlog_record(log, (void *)addr, ZOP_ALLOC, ref);
3607 		addr += *(vm_offset_t *)addr;
3608 	}
3609 }
3610 
3611 #define ZALLOC_LOG(zone, addr, count)  ({ \
3612 	if ((zone)->z_btlog) {                                                 \
3613 	        zalloc_log(zone, addr, count, __builtin_frame_address(0));     \
3614 	}                                                                      \
3615 })
3616 
3617 #if !KASAN_TBI
3618 __cold
3619 #endif
3620 static void
zfree_log(zone_t zone,vm_offset_t addr,uint32_t count,void * fp)3621 zfree_log(zone_t zone, vm_offset_t addr, uint32_t count, void *fp)
3622 {
3623 	btlog_t log = zone->z_btlog;
3624 	btref_get_flags_t flags = 0;
3625 	btref_t ref;
3626 
3627 #if !KASAN_TBI
3628 	if (!log) {
3629 		return;
3630 	}
3631 #endif
3632 
3633 	/*
3634 	 * See if we're doing logging on this zone.
3635 	 *
3636 	 * There are two styles of logging used depending on
3637 	 * whether we're trying to catch a leak or corruption.
3638 	 */
3639 #if !KASAN_TBI
3640 	if (btlog_get_type(log) == BTLOG_HASH) {
3641 		/*
3642 		 * We're logging to catch a leak.
3643 		 *
3644 		 * Remove any record we might have for this element
3645 		 * since it's being freed.  Note that we may not find it
3646 		 * if the buffer overflowed and that's OK.
3647 		 *
3648 		 * Since the log is of a limited size, old records get
3649 		 * overwritten if there are more zallocs than zfrees.
3650 		 */
3651 		while (count-- > 0) {
3652 			btlog_erase(log, (void *)addr);
3653 			addr += *(vm_offset_t *)addr;
3654 		}
3655 		return;
3656 	}
3657 #endif /* !KASAN_TBI */
3658 
3659 	if (get_preemption_level() || zone_supports_vm(zone)) {
3660 		/*
3661 		 * VM zones can be used by btlog, avoid reentrancy issues.
3662 		 */
3663 		flags = BTREF_GET_NOWAIT;
3664 	}
3665 
3666 	ref = btref_get(fp, flags);
3667 	while (count-- > 0) {
3668 		if (count) {
3669 			btref_retain(ref);
3670 		}
3671 		btlog_record(log, (void *)addr, ZOP_FREE, ref);
3672 		addr += *(vm_offset_t *)addr;
3673 	}
3674 }
3675 
3676 #define ZFREE_LOG(zone, addr, count)  ({ \
3677 	if ((zone)->z_btlog) {                                                 \
3678 	        zfree_log(zone, addr, count, __builtin_frame_address(0));      \
3679 	}                                                                      \
3680 })
3681 
3682 #else
3683 #define ZALLOC_LOG(...)         ((void)0)
3684 #define ZFREE_LOG(...)          ((void)0)
3685 #endif /* ZALLOC_ENABLE_LOGGING || CONFIG_ZLEAKS || KASAN_TBI */
3686 #endif /* !ZALLOC_TEST */
3687 #pragma mark zone (re)fill
3688 #if !ZALLOC_TEST
3689 
3690 /*!
3691  * @defgroup Zone Refill
3692  * @{
3693  *
3694  * @brief
3695  * Functions handling The zone refill machinery.
3696  *
3697  * @discussion
3698  * Zones are refilled based on 2 mechanisms: direct expansion, async expansion.
3699  *
3700  * @c zalloc_ext() is the codepath that kicks the zone refill when the zone is
3701  * dropping below half of its @c z_elems_rsv (0 for most zones) and will:
3702  *
3703  * - call @c zone_expand_locked() directly if the caller is allowed to block,
3704  *
3705  * - wakeup the asynchroous expansion thread call if the caller is not allowed
3706  *   to block, or if the reserve becomes depleted.
3707  *
3708  *
3709  * <h2>Synchronous expansion</h2>
3710  *
3711  * This mechanism is actually the only one that may refill a zone, and all the
3712  * other ones funnel through this one eventually.
3713  *
3714  * @c zone_expand_locked() implements the core of the expansion mechanism,
3715  * and will do so while a caller specified predicate is true.
3716  *
3717  * Zone expansion allows for up to 2 threads to concurrently refill the zone:
3718  * - one VM privileged thread,
3719  * - one regular thread.
3720  *
3721  * Regular threads that refill will put down their identity in @c z_expander,
3722  * so that priority inversion avoidance can be implemented.
3723  *
3724  * However, VM privileged threads are allowed to use VM page reserves,
3725  * which allows for the system to recover from extreme memory pressure
3726  * situations, allowing for the few allocations that @c zone_gc() or
3727  * killing processes require.
3728  *
3729  * When a VM privileged thread is also expanding, the @c z_expander_vm_priv bit
3730  * is set. @c z_expander is not necessarily the identity of this VM privileged
3731  * thread (it is if the VM privileged thread came in first, but wouldn't be, and
3732  * could even be @c THREAD_NULL otherwise).
3733  *
3734  * Note that the pageout-scan daemon might be BG and is VM privileged. To avoid
3735  * spending a whole pointer on priority inheritance for VM privileged threads
3736  * (and other issues related to having two owners), we use the rwlock boost as
3737  * a stop gap to avoid priority inversions.
3738  *
3739  *
3740  * <h2>Chunk wiring policies</h2>
3741  *
3742  * Zones allocate memory in chunks of @c zone_t::z_chunk_pages pages at a time
3743  * to try to minimize fragmentation relative to element sizes not aligning with
3744  * a chunk size well.  However, this can grow large and be hard to fulfill on
3745  * a system under a lot of memory pressure (chunks can be as long as 8 pages on
3746  * 4k page systems).
3747  *
3748  * This is why, when under memory pressure the system allows chunks to be
3749  * partially populated. The metadata of the first page in the chunk maintains
3750  * the count of actually populated pages.
3751  *
3752  * The metadata for addresses assigned to a zone are found of 4 queues:
3753  * - @c z_pageq_empty has chunk heads with populated pages and no allocated
3754  *   elements (those can be targeted by @c zone_gc()),
3755  * - @c z_pageq_partial has chunk heads with populated pages that are partially
3756  *   used,
3757  * - @c z_pageq_full has chunk heads with populated pages with no free elements
3758  *   left,
3759  * - @c z_pageq_va has either chunk heads for sequestered VA space assigned to
3760  *   the zone forever, or the first secondary metadata for a chunk whose
3761  *   corresponding page is not populated in the chunk.
3762  *
3763  * When new pages need to be wired/populated, chunks from the @c z_pageq_va
3764  * queues are preferred.
3765  *
3766  *
3767  * <h2>Asynchronous expansion</h2>
3768  *
3769  * This mechanism allows for refilling zones used mostly with non blocking
3770  * callers. It relies on a thread call (@c zone_expand_callout) which will
3771  * iterate all zones and refill the ones marked with @c z_async_refilling.
3772  *
3773  * NOTE: If the calling thread for zalloc_noblock is lower priority than
3774  *       the thread_call, then zalloc_noblock to an empty zone may succeed.
3775  *
3776  *
3777  * <h2>Dealing with zone allocations from the mach VM code</h2>
3778  *
3779  * The implementation of the mach VM itself uses the zone allocator
3780  * for things like the vm_map_entry data structure. In order to prevent
3781  * a recursion problem when adding more pages to a zone, the VM zones
3782  * use the Z_SUBMAP_IDX_VM submap which doesn't use kmem_alloc()
3783  * or any VM map functions to allocate.
3784  *
3785  * Instead, a really simple coalescing first-fit allocator is used
3786  * for this submap, and no one else than zalloc can allocate from it.
3787  *
3788  * Memory is directly populated which doesn't require allocation of
3789  * VM map entries, and avoids recursion. The cost of this scheme however,
3790  * is that `vm_map_lookup_entry` will not function on those addresses
3791  * (nor any API relying on it).
3792  */
3793 
3794 static void zone_reclaim_elements(zone_t z, uint16_t n, vm_offset_t *elems);
3795 static void zone_depot_trim(zone_t z, uint32_t target, struct zone_depot *zd);
3796 static thread_call_data_t zone_expand_callout;
3797 
3798 __attribute__((overloadable))
3799 static inline bool
zone_submap_is_sequestered(zone_submap_idx_t idx)3800 zone_submap_is_sequestered(zone_submap_idx_t idx)
3801 {
3802 	return idx != Z_SUBMAP_IDX_DATA;
3803 }
3804 
3805 __attribute__((overloadable))
3806 static inline bool
zone_submap_is_sequestered(zone_security_flags_t zsflags)3807 zone_submap_is_sequestered(zone_security_flags_t zsflags)
3808 {
3809 	return zone_submap_is_sequestered(zsflags.z_submap_idx);
3810 }
3811 
3812 static inline kma_flags_t
zone_kma_flags(zone_t z,zone_security_flags_t zsflags,zalloc_flags_t flags)3813 zone_kma_flags(zone_t z, zone_security_flags_t zsflags, zalloc_flags_t flags)
3814 {
3815 	kma_flags_t kmaflags = KMA_KOBJECT | KMA_ZERO;
3816 
3817 	if (zsflags.z_noencrypt) {
3818 		kmaflags |= KMA_NOENCRYPT;
3819 	}
3820 	if (zsflags.z_submap_idx == Z_SUBMAP_IDX_DATA) {
3821 		kmaflags |= KMA_DATA;
3822 	}
3823 	if (flags & Z_NOPAGEWAIT) {
3824 		kmaflags |= KMA_NOPAGEWAIT;
3825 	}
3826 	if (z->z_permanent || (!z->z_destructible &&
3827 	    zone_submap_is_sequestered(zsflags))) {
3828 		kmaflags |= KMA_PERMANENT;
3829 	}
3830 	if (zsflags.z_submap_from_end) {
3831 		kmaflags |= KMA_LAST_FREE;
3832 	}
3833 
3834 
3835 	return kmaflags;
3836 }
3837 
3838 static inline void
zone_add_wired_pages(zone_t z,uint32_t pages)3839 zone_add_wired_pages(zone_t z, uint32_t pages)
3840 {
3841 	os_atomic_add(&zone_pages_wired, pages, relaxed);
3842 
3843 #if CONFIG_ZLEAKS
3844 	if (__improbable(zleak_should_enable_for_zone(z) &&
3845 	    startup_phase >= STARTUP_SUB_THREAD_CALL)) {
3846 		thread_call_enter(&zone_leaks_callout);
3847 	}
3848 #else
3849 	(void)z;
3850 #endif
3851 }
3852 
3853 static inline void
zone_remove_wired_pages(zone_t z,uint32_t pages)3854 zone_remove_wired_pages(zone_t z, uint32_t pages)
3855 {
3856 	os_atomic_sub(&zone_pages_wired, pages, relaxed);
3857 
3858 #if CONFIG_ZLEAKS
3859 	if (__improbable(zleak_should_disable_for_zone(z) &&
3860 	    startup_phase >= STARTUP_SUB_THREAD_CALL)) {
3861 		thread_call_enter(&zone_leaks_callout);
3862 	}
3863 #else
3864 	(void)z;
3865 #endif
3866 }
3867 
3868 #if ZSECURITY_CONFIG(ZONE_TAGGING)
3869 static inline vm_address_t
zone_tag_element(zone_t zone,vm_offset_t addr,vm_size_t elem_size)3870 zone_tag_element(zone_t zone, vm_offset_t addr, vm_size_t elem_size)
3871 {
3872 	vm_offset_t tagged_address = vm_memtag_assign_tag(addr, elem_size);
3873 	vm_memtag_set_tag(tagged_address, elem_size);
3874 
3875 	if (zone->z_percpu) {
3876 		zpercpu_foreach_cpu(index) {
3877 			vm_memtag_set_tag(tagged_address + ptoa(index), elem_size);
3878 		}
3879 	}
3880 
3881 	return tagged_address;
3882 }
3883 
3884 static inline vm_address_t
zone_tag_free_element(zone_t zone,vm_offset_t addr,vm_size_t elem_size)3885 zone_tag_free_element(zone_t zone, vm_offset_t addr, vm_size_t elem_size)
3886 {
3887 	if (__improbable(addr > 0xFF00000000000000ULL)) {
3888 		return addr;
3889 	}
3890 
3891 	return zone_tag_element(zone, addr, elem_size);
3892 }
3893 
3894 static inline void
zcram_memtag_init(zone_t zone,vm_offset_t base,uint32_t start,uint32_t end)3895 zcram_memtag_init(zone_t zone, vm_offset_t base, uint32_t start, uint32_t end)
3896 {
3897 	zone_security_flags_t *zsflags = &zone_security_array[zone_index(zone)];
3898 
3899 	if (!zsflags->z_tag) {
3900 		return;
3901 	}
3902 
3903 	vm_offset_t elem_size = zone_elem_outer_size(zone);
3904 	vm_offset_t oob_offs = zone_elem_outer_offs(zone);
3905 
3906 	for (uint32_t i = start; i < end; i++) {
3907 		vm_offset_t elem_addr = base + oob_offs + i * elem_size;
3908 
3909 		(void)zone_tag_element(zone, elem_addr, elem_size);
3910 	}
3911 }
3912 #else /* ZSECURITY_CONFIG(ZONE_TAGGING) */
3913 #define zone_tag_free_element(z, a, s)  (a)
3914 #define zcram_memtag_init(z, b, s, e)   do {} while (0)
3915 #endif /* ZSECURITY_CONFIG(ZONE_TAGGING) */
3916 
3917 /*!
3918  * @function zcram_and_lock()
3919  *
3920  * @brief
3921  * Prepare some memory for being usable for allocation purposes.
3922  *
3923  * @discussion
3924  * Prepare memory in <code>[addr + ptoa(pg_start), addr + ptoa(pg_end))</code>
3925  * to be usable in the zone.
3926  *
3927  * This function assumes the metadata is already populated for the range.
3928  *
3929  * Calling this function with @c pg_start being 0 means that the memory
3930  * is either a partial chunk, or a full chunk, that isn't published anywhere
3931  * and the initialization can happen without locks held.
3932  *
3933  * Calling this function with a non zero @c pg_start means that we are extending
3934  * an existing chunk: the memory in <code>[addr, addr + ptoa(pg_start))</code>,
3935  * is already usable and published in the zone, so extending it requires holding
3936  * the zone lock.
3937  *
3938  * @param zone          The zone to cram new populated pages into
3939  * @param addr          The base address for the chunk(s)
3940  * @param pg_va_new     The number of virtual pages newly assigned to the zone
3941  * @param pg_start      The first newly populated page relative to @a addr.
3942  * @param pg_end        The after-last newly populated page relative to @a addr.
3943  * @param lock          0 or ZM_ALLOC_SIZE_LOCK (used by early crams)
3944  */
3945 static void
zcram_and_lock(zone_t zone,vm_offset_t addr,uint32_t pg_va_new,uint32_t pg_start,uint32_t pg_end,uint16_t lock)3946 zcram_and_lock(zone_t zone, vm_offset_t addr, uint32_t pg_va_new,
3947     uint32_t pg_start, uint32_t pg_end, uint16_t lock)
3948 {
3949 	zone_id_t zindex = zone_index(zone);
3950 	vm_offset_t elem_size = zone_elem_outer_size(zone);
3951 	uint32_t free_start = 0, free_end = 0;
3952 	uint32_t oob_offs = zone_elem_outer_offs(zone);
3953 
3954 	struct zone_page_metadata *meta = zone_meta_from_addr(addr);
3955 	uint32_t chunk_pages = zone->z_chunk_pages;
3956 	bool guarded = meta->zm_guarded;
3957 
3958 	assert(pg_start < pg_end && pg_end <= chunk_pages);
3959 
3960 	if (pg_start == 0) {
3961 		uint16_t chunk_len = (uint16_t)pg_end;
3962 		uint16_t secondary_len = ZM_SECONDARY_PAGE;
3963 		bool inline_bitmap = false;
3964 
3965 		if (zone->z_percpu) {
3966 			chunk_len = 1;
3967 			secondary_len = ZM_SECONDARY_PCPU_PAGE;
3968 			assert(pg_end == zpercpu_count());
3969 		}
3970 		if (!zone->z_permanent && !zone->z_uses_tags) {
3971 			inline_bitmap = zone->z_chunk_elems <= 32 * chunk_pages;
3972 		}
3973 
3974 		free_end = (uint32_t)(ptoa(chunk_len) - oob_offs) / elem_size;
3975 
3976 		meta[0] = (struct zone_page_metadata){
3977 			.zm_index         = zindex,
3978 			.zm_guarded       = guarded,
3979 			.zm_inline_bitmap = inline_bitmap,
3980 			.zm_chunk_len     = chunk_len,
3981 			.zm_alloc_size    = lock,
3982 		};
3983 
3984 		if (!zone->z_permanent && !inline_bitmap) {
3985 			meta[0].zm_bitmap = zone_meta_bits_alloc_init(free_end,
3986 			    zone->z_chunk_elems, zone->z_uses_tags);
3987 		}
3988 
3989 		for (uint16_t i = 1; i < chunk_pages; i++) {
3990 			meta[i] = (struct zone_page_metadata){
3991 				.zm_index          = zindex,
3992 				.zm_guarded        = guarded,
3993 				.zm_inline_bitmap  = inline_bitmap,
3994 				.zm_chunk_len      = secondary_len,
3995 				.zm_page_index     = (uint8_t)i,
3996 				.zm_bitmap         = meta[0].zm_bitmap,
3997 				.zm_subchunk_len   = (uint8_t)(chunk_pages - i),
3998 			};
3999 		}
4000 
4001 		if (inline_bitmap) {
4002 			zone_meta_bits_init_inline(meta, free_end);
4003 		}
4004 	} else {
4005 		assert(!zone->z_percpu && !zone->z_permanent);
4006 
4007 		free_end = (uint32_t)(ptoa(pg_end) - oob_offs) / elem_size;
4008 		free_start = (uint32_t)(ptoa(pg_start) - oob_offs) / elem_size;
4009 	}
4010 
4011 	zcram_memtag_init(zone, addr, free_start, free_end);
4012 
4013 #if KASAN_CLASSIC
4014 	assert(pg_start == 0);         /* KASAN_CLASSIC never does partial chunks */
4015 	if (zone->z_permanent) {
4016 		kasan_poison_range(addr, ptoa(pg_end), ASAN_VALID);
4017 	} else if (zone->z_percpu) {
4018 		for (uint32_t i = 0; i < pg_end; i++) {
4019 			kasan_zmem_add(addr + ptoa(i), PAGE_SIZE,
4020 			    zone_elem_outer_size(zone),
4021 			    zone_elem_outer_offs(zone),
4022 			    zone_elem_redzone(zone));
4023 		}
4024 	} else {
4025 		kasan_zmem_add(addr, ptoa(pg_end),
4026 		    zone_elem_outer_size(zone),
4027 		    zone_elem_outer_offs(zone),
4028 		    zone_elem_redzone(zone));
4029 	}
4030 #endif /* KASAN_CLASSIC */
4031 
4032 	/*
4033 	 * Insert the initialized pages / metadatas into the right lists.
4034 	 */
4035 
4036 	zone_lock(zone);
4037 	assert(zone->z_self == zone);
4038 
4039 	if (pg_start != 0) {
4040 		assert(meta->zm_chunk_len == pg_start);
4041 
4042 		zone_meta_bits_merge(meta, free_start, free_end);
4043 		meta->zm_chunk_len = (uint16_t)pg_end;
4044 
4045 		/*
4046 		 * consume the zone_meta_lock_in_partial()
4047 		 * done in zone_expand_locked()
4048 		 */
4049 		zone_meta_alloc_size_sub(zone, meta, ZM_ALLOC_SIZE_LOCK);
4050 		zone_meta_remqueue(zone, meta);
4051 	}
4052 
4053 	if (zone->z_permanent || meta->zm_alloc_size) {
4054 		zone_meta_queue_push(zone, &zone->z_pageq_partial, meta);
4055 	} else {
4056 		zone_meta_queue_push(zone, &zone->z_pageq_empty, meta);
4057 		zone->z_wired_empty += zone->z_percpu ? 1 : pg_end;
4058 	}
4059 	if (pg_end < chunk_pages) {
4060 		/* push any non populated residual VA on z_pageq_va */
4061 		zone_meta_queue_push(zone, &zone->z_pageq_va, meta + pg_end);
4062 	}
4063 
4064 	zone->z_elems_free  += free_end - free_start;
4065 	zone->z_elems_avail += free_end - free_start;
4066 	zone->z_wired_cur   += zone->z_percpu ? 1 : pg_end - pg_start;
4067 	if (pg_va_new) {
4068 		zone->z_va_cur += zone->z_percpu ? 1 : pg_va_new;
4069 	}
4070 	if (zone->z_wired_hwm < zone->z_wired_cur) {
4071 		zone->z_wired_hwm = zone->z_wired_cur;
4072 	}
4073 
4074 #if CONFIG_ZLEAKS
4075 	if (__improbable(zleak_should_enable_for_zone(zone) &&
4076 	    startup_phase >= STARTUP_SUB_THREAD_CALL)) {
4077 		thread_call_enter(&zone_leaks_callout);
4078 	}
4079 #endif /* CONFIG_ZLEAKS */
4080 
4081 	zone_add_wired_pages(zone, pg_end - pg_start);
4082 }
4083 
4084 static void
zcram(zone_t zone,vm_offset_t addr,uint32_t pages,uint16_t lock)4085 zcram(zone_t zone, vm_offset_t addr, uint32_t pages, uint16_t lock)
4086 {
4087 	uint32_t chunk_pages = zone->z_chunk_pages;
4088 
4089 	assert(pages % chunk_pages == 0);
4090 	for (; pages > 0; pages -= chunk_pages, addr += ptoa(chunk_pages)) {
4091 		zcram_and_lock(zone, addr, chunk_pages, 0, chunk_pages, lock);
4092 		zone_unlock(zone);
4093 	}
4094 }
4095 
4096 __startup_func
4097 void
zone_cram_early(zone_t zone,vm_offset_t newmem,vm_size_t size)4098 zone_cram_early(zone_t zone, vm_offset_t newmem, vm_size_t size)
4099 {
4100 	uint32_t pages = (uint32_t)atop(size);
4101 
4102 
4103 	assert(from_zone_map(newmem, size));
4104 	assert3u(size % ptoa(zone->z_chunk_pages), ==, 0);
4105 	assert3u(startup_phase, <, STARTUP_SUB_ZALLOC);
4106 
4107 	/*
4108 	 * The early pages we move at the pmap layer can't be "depopulated"
4109 	 * because there's no vm_page_t for them.
4110 	 *
4111 	 * "Lock" them so that they never hit z_pageq_empty.
4112 	 */
4113 	vm_memtag_bzero((void *)newmem, size);
4114 	zcram(zone, newmem, pages, ZM_ALLOC_SIZE_LOCK);
4115 }
4116 
4117 /*!
4118  * @function zone_submap_alloc_sequestered_va
4119  *
4120  * @brief
4121  * Allocates VA without using vm_find_space().
4122  *
4123  * @discussion
4124  * Allocate VA quickly without using the slower vm_find_space() for cases
4125  * when the submaps are fully sequestered.
4126  *
4127  * The VM submap is used to implement the VM itself so it is always sequestered,
4128  * as it can't kmem_alloc which needs to always allocate vm entries.
4129  * However, it can use vm_map_enter() which tries to coalesce entries, which
4130  * always works, so the VM map only ever needs 2 entries (one for each end).
4131  *
4132  * The RO submap is similarly always sequestered if it exists (as a non
4133  * sequestered RO submap makes very little sense).
4134  *
4135  * The allocator is a very simple bump-allocator
4136  * that allocates from either end.
4137  */
4138 static kern_return_t
zone_submap_alloc_sequestered_va(zone_security_flags_t zsflags,uint32_t pages,vm_offset_t * addrp)4139 zone_submap_alloc_sequestered_va(zone_security_flags_t zsflags, uint32_t pages,
4140     vm_offset_t *addrp)
4141 {
4142 	vm_size_t size = ptoa(pages);
4143 	vm_map_t map = zone_submap(zsflags);
4144 	vm_map_entry_t first, last;
4145 	vm_map_offset_t addr;
4146 
4147 	vm_map_lock(map);
4148 
4149 	first = vm_map_first_entry(map);
4150 	last = vm_map_last_entry(map);
4151 
4152 	if (first->vme_end + size > last->vme_start) {
4153 		vm_map_unlock(map);
4154 		return KERN_NO_SPACE;
4155 	}
4156 
4157 	if (zsflags.z_submap_from_end) {
4158 		last->vme_start -= size;
4159 		addr = last->vme_start;
4160 		VME_OFFSET_SET(last, addr);
4161 	} else {
4162 		addr = first->vme_end;
4163 		first->vme_end += size;
4164 	}
4165 	map->size += size;
4166 
4167 	vm_map_unlock(map);
4168 
4169 	*addrp = addr;
4170 	return KERN_SUCCESS;
4171 }
4172 
4173 void
zone_fill_initially(zone_t zone,vm_size_t nelems)4174 zone_fill_initially(zone_t zone, vm_size_t nelems)
4175 {
4176 	kma_flags_t kmaflags = KMA_NOFAIL | KMA_PERMANENT;
4177 	kern_return_t kr;
4178 	vm_offset_t addr;
4179 	uint32_t pages;
4180 	zone_security_flags_t zsflags = zone_security_config(zone);
4181 
4182 	assert(!zone->z_permanent && !zone->collectable && !zone->z_destructible);
4183 	assert(zone->z_elems_avail == 0);
4184 
4185 	kmaflags |= zone_kma_flags(zone, zsflags, Z_WAITOK);
4186 	pages = zone_alloc_pages_for_nelems(zone, nelems);
4187 	if (zone_submap_is_sequestered(zsflags)) {
4188 		kr = zone_submap_alloc_sequestered_va(zsflags, pages, &addr);
4189 		if (kr != KERN_SUCCESS) {
4190 			panic("zone_submap_alloc_sequestered_va() "
4191 			    "of %u pages failed", pages);
4192 		}
4193 		kernel_memory_populate(addr, ptoa(pages),
4194 		    kmaflags, VM_KERN_MEMORY_ZONE);
4195 	} else {
4196 		assert(zsflags.z_submap_idx != Z_SUBMAP_IDX_READ_ONLY);
4197 		kmem_alloc(zone_submap(zsflags), &addr, ptoa(pages),
4198 		    kmaflags, VM_KERN_MEMORY_ZONE);
4199 	}
4200 
4201 	zone_meta_populate(addr, ptoa(pages));
4202 	zcram(zone, addr, pages, 0);
4203 }
4204 
4205 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
4206 __attribute__((noinline))
4207 static void
zone_scramble_va_and_unlock(zone_t z,struct zone_page_metadata * meta,uint32_t runs,uint32_t pages,uint32_t chunk_pages,uint64_t guard_mask)4208 zone_scramble_va_and_unlock(
4209 	zone_t                      z,
4210 	struct zone_page_metadata  *meta,
4211 	uint32_t                    runs,
4212 	uint32_t                    pages,
4213 	uint32_t                    chunk_pages,
4214 	uint64_t                    guard_mask)
4215 {
4216 	struct zone_page_metadata *arr[ZONE_CHUNK_ALLOC_SIZE / 4096];
4217 
4218 	for (uint32_t run = 0, n = 0; run < runs; run++) {
4219 		arr[run] = meta + n;
4220 		n += chunk_pages + ((guard_mask >> run) & 1);
4221 	}
4222 
4223 	/*
4224 	 * Fisher–Yates shuffle, for an array with indices [0, n)
4225 	 *
4226 	 * for i from n−1 downto 1 do
4227 	 *     j ← random integer such that 0 ≤ j ≤ i
4228 	 *     exchange a[j] and a[i]
4229 	 *
4230 	 * The point here is that early allocations aren't at a fixed
4231 	 * distance from each other.
4232 	 */
4233 	for (uint32_t i = runs - 1; i > 0; i--) {
4234 		uint32_t j = zalloc_random_uniform32(0, i + 1);
4235 
4236 		meta   = arr[j];
4237 		arr[j] = arr[i];
4238 		arr[i] = meta;
4239 	}
4240 
4241 	zone_lock(z);
4242 
4243 	for (uint32_t i = 0; i < runs; i++) {
4244 		zone_meta_queue_push(z, &z->z_pageq_va, arr[i]);
4245 	}
4246 	z->z_va_cur += z->z_percpu ? runs : pages;
4247 }
4248 
4249 static inline uint32_t
dist_u32(uint32_t a,uint32_t b)4250 dist_u32(uint32_t a, uint32_t b)
4251 {
4252 	return a < b ? b - a : a - b;
4253 }
4254 
4255 static uint64_t
zalloc_random_clear_n_bits(uint64_t mask,uint32_t pop,uint32_t n)4256 zalloc_random_clear_n_bits(uint64_t mask, uint32_t pop, uint32_t n)
4257 {
4258 	for (; n-- > 0; pop--) {
4259 		uint32_t bit = zalloc_random_uniform32(0, pop);
4260 		uint64_t m = mask;
4261 
4262 		for (; bit; bit--) {
4263 			m &= m - 1;
4264 		}
4265 
4266 		mask ^= 1ull << __builtin_ctzll(m);
4267 	}
4268 
4269 	return mask;
4270 }
4271 
4272 /**
4273  * @function zalloc_random_bits
4274  *
4275  * @brief
4276  * Compute a random number with a specified number of bit set in a given width.
4277  *
4278  * @discussion
4279  * This function generates a "uniform" distribution of sets of bits set in
4280  * a given width, with typically less than width/4 calls to random.
4281  *
4282  * @param pop           the target number of bits set.
4283  * @param width         the number of bits in the random integer to generate.
4284  */
4285 static uint64_t
zalloc_random_bits(uint32_t pop,uint32_t width)4286 zalloc_random_bits(uint32_t pop, uint32_t width)
4287 {
4288 	uint64_t w_mask = (1ull << width) - 1;
4289 	uint64_t mask;
4290 	uint32_t cur;
4291 
4292 	if (3 * width / 4 <= pop) {
4293 		mask = w_mask;
4294 		cur  = width;
4295 	} else if (pop <= width / 4) {
4296 		mask = 0;
4297 		cur  = 0;
4298 	} else {
4299 		/*
4300 		 * Chosing a random number this way will overwhelmingly
4301 		 * contain `width` bits +/- a few.
4302 		 */
4303 		mask = zalloc_random_mask64(width);
4304 		cur  = __builtin_popcountll(mask);
4305 
4306 		if (dist_u32(cur, pop) > dist_u32(width - cur, pop)) {
4307 			/*
4308 			 * If the opposite mask has a closer popcount,
4309 			 * then start with that one as the seed.
4310 			 */
4311 			cur = width - cur;
4312 			mask ^= w_mask;
4313 		}
4314 	}
4315 
4316 	if (cur < pop) {
4317 		/*
4318 		 * Setting `pop - cur` bits is really clearing that many from
4319 		 * the opposite mask.
4320 		 */
4321 		mask ^= w_mask;
4322 		mask = zalloc_random_clear_n_bits(mask, width - cur, pop - cur);
4323 		mask ^= w_mask;
4324 	} else if (pop < cur) {
4325 		mask = zalloc_random_clear_n_bits(mask, cur, cur - pop);
4326 	}
4327 
4328 	return mask;
4329 }
4330 #endif
4331 
4332 static void
zone_allocate_va_locked(zone_t z,zalloc_flags_t flags)4333 zone_allocate_va_locked(zone_t z, zalloc_flags_t flags)
4334 {
4335 	zone_security_flags_t zsflags = zone_security_config(z);
4336 	struct zone_page_metadata *meta;
4337 	kma_flags_t kmaflags = zone_kma_flags(z, zsflags, flags) | KMA_VAONLY;
4338 	uint32_t chunk_pages = z->z_chunk_pages;
4339 	uint32_t runs, pages, guards, rnum;
4340 	uint64_t guard_mask = 0;
4341 	bool     lead_guard = false;
4342 	kern_return_t kr;
4343 	vm_offset_t addr;
4344 
4345 	zone_unlock(z);
4346 
4347 	/*
4348 	 * A lot of OOB exploitation techniques rely on precise placement
4349 	 * and interleaving of zone pages. The layout that is sought
4350 	 * by attackers will be C/P/T types, where:
4351 	 * - (C)ompromised is the type for which attackers have a bug,
4352 	 * - (P)adding is used to pad memory,
4353 	 * - (T)arget is the type that the attacker will attempt to corrupt
4354 	 *   by exploiting (C).
4355 	 *
4356 	 * Note that in some cases C==T and P isn't needed.
4357 	 *
4358 	 * In order to make those placement games much harder,
4359 	 * we grow zones by random runs of memory, up to 256k.
4360 	 * This makes predicting the precise layout of the heap
4361 	 * quite more complicated.
4362 	 *
4363 	 * Note: this function makes a very heavy use of random,
4364 	 *       however, it is mostly limited to sequestered zones,
4365 	 *       and eventually the layout will be fixed,
4366 	 *       and the usage of random vastly reduced.
4367 	 *
4368 	 *       For non sequestered zones, there's a single call
4369 	 *       to random in order to decide whether we want
4370 	 *       a guard page or not.
4371 	 */
4372 	pages  = chunk_pages;
4373 	guards = 0;
4374 	runs   = 1;
4375 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
4376 	if (!z->z_percpu && zone_submap_is_sequestered(zsflags)) {
4377 		pages = atop(ZONE_CHUNK_ALLOC_SIZE);
4378 		runs  = (pages + chunk_pages - 1) / chunk_pages;
4379 		runs  = zalloc_random_uniform32(1, runs + 1);
4380 		pages = runs * chunk_pages;
4381 	}
4382 	static_assert(ZONE_CHUNK_ALLOC_SIZE / 4096 <= 64,
4383 	    "make sure that `runs` will never be larger than 64");
4384 #endif /* !ZSECURITY_CONFIG(SAD_FENG_SHUI) */
4385 
4386 	/*
4387 	 * Zones that are suceptible to OOB (kalloc, ZC_PGZ_USE_GUARDS),
4388 	 * guards might be added after each chunk.
4389 	 *
4390 	 * Those guard pages are marked with the ZM_PGZ_GUARD
4391 	 * magical chunk len, and their zm_oob_offs field
4392 	 * is used to remember optional shift applied
4393 	 * to returned elements, in order to right-align-them
4394 	 * as much as possible.
4395 	 *
4396 	 * In an adversarial context, while guard pages
4397 	 * are extremely effective against linear overflow,
4398 	 * using a predictable density of guard pages feels like
4399 	 * a missed opportunity. Which is why we chose to insert
4400 	 * one guard page for about 32k of memory, and place it
4401 	 * randomly.
4402 	 */
4403 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
4404 	if (z->z_percpu) {
4405 		/*
4406 		 * For per-cpu runs, have a 75% chance to have a guard.
4407 		 */
4408 		rnum = zalloc_random_uniform32(0, 4 * 128);
4409 		guards = rnum >= 128;
4410 	} else if (!zsflags.z_pgz_use_guards && !z->z_pgz_use_guards) {
4411 		vm_offset_t rest;
4412 
4413 		/*
4414 		 * For types that are less susceptible to have OOBs,
4415 		 * have a density of 1 guard every 64k, with a uniform
4416 		 * distribution.
4417 		 */
4418 		rnum   = zalloc_random_uniform32(0, ZONE_GUARD_SPARSE);
4419 		guards = (uint32_t)ptoa(pages) / ZONE_GUARD_SPARSE;
4420 		rest   = (uint32_t)ptoa(pages) % ZONE_GUARD_SPARSE;
4421 		guards += rnum < rest;
4422 	} else if (ptoa(chunk_pages) >= ZONE_GUARD_DENSE) {
4423 		/*
4424 		 * For chunks >= 32k, have a 75% chance of guard pages
4425 		 * between chunks.
4426 		 */
4427 		rnum = zalloc_random_uniform32(65, 129);
4428 		guards = runs * rnum / 128;
4429 	} else {
4430 		vm_offset_t rest;
4431 
4432 		/*
4433 		 * Otherwise, aim at 1 guard every 32k,
4434 		 * with a uniform distribution.
4435 		 */
4436 		rnum   = zalloc_random_uniform32(0, ZONE_GUARD_DENSE);
4437 		guards = (uint32_t)ptoa(pages) / ZONE_GUARD_DENSE;
4438 		rest   = (uint32_t)ptoa(pages) % ZONE_GUARD_DENSE;
4439 		guards += rnum < rest;
4440 	}
4441 	assert3u(guards, <=, runs);
4442 
4443 	guard_mask = 0;
4444 
4445 	if (!z->z_percpu && zone_submap_is_sequestered(zsflags)) {
4446 		uint32_t g = 0;
4447 
4448 		/*
4449 		 * Several exploitation strategies rely on a C/T (compromised
4450 		 * then target types) ordering of pages with a sub-page reach
4451 		 * from C into T.
4452 		 *
4453 		 * We want to reliably thwart such exploitations
4454 		 * and hence force a guard page between alternating
4455 		 * memory types.
4456 		 */
4457 		guard_mask |= 1ull << (runs - 1);
4458 		g++;
4459 
4460 		/*
4461 		 * While we randomize the chunks lengths, an attacker with
4462 		 * precise timing control can guess when overflows happen,
4463 		 * and "measure" the runs, which gives them an indication
4464 		 * of where the next run start offset is.
4465 		 *
4466 		 * In order to make this knowledge unusable, add a guard page
4467 		 * _before_ the new run with a 25% probability, regardless
4468 		 * of whether we had enough guard pages.
4469 		 */
4470 		if ((rnum & 3) == 0) {
4471 			lead_guard = true;
4472 			g++;
4473 		}
4474 		if (guards > g) {
4475 			guard_mask |= zalloc_random_bits(guards - g, runs - 1);
4476 		} else {
4477 			guards = g;
4478 		}
4479 	} else {
4480 		assert3u(runs, ==, 1);
4481 		assert3u(guards, <=, 1);
4482 		guard_mask = guards << (runs - 1);
4483 	}
4484 #else
4485 	(void)rnum;
4486 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) */
4487 
4488 	if (zone_submap_is_sequestered(zsflags)) {
4489 		kr = zone_submap_alloc_sequestered_va(zsflags,
4490 		    pages + guards, &addr);
4491 	} else {
4492 		assert(zsflags.z_submap_idx != Z_SUBMAP_IDX_READ_ONLY);
4493 		kr = kmem_alloc(zone_submap(zsflags), &addr,
4494 		    ptoa(pages + guards), kmaflags, VM_KERN_MEMORY_ZONE);
4495 	}
4496 
4497 	if (kr != KERN_SUCCESS) {
4498 		uint64_t zone_size = 0;
4499 		zone_t zone_largest = zone_find_largest(&zone_size);
4500 		panic("zalloc[%d]: zone map exhausted while allocating from zone [%s%s], "
4501 		    "likely due to memory leak in zone [%s%s] "
4502 		    "(%u%c, %d elements allocated)",
4503 		    kr, zone_heap_name(z), zone_name(z),
4504 		    zone_heap_name(zone_largest), zone_name(zone_largest),
4505 		    mach_vm_size_pretty(zone_size),
4506 		    mach_vm_size_unit(zone_size),
4507 		    zone_count_allocated(zone_largest));
4508 	}
4509 
4510 	meta = zone_meta_from_addr(addr);
4511 	zone_meta_populate(addr, ptoa(pages + guards));
4512 
4513 	/*
4514 	 * Handle the leading guard page if any
4515 	 */
4516 	if (lead_guard) {
4517 		meta[0].zm_index = zone_index(z);
4518 		meta[0].zm_chunk_len = ZM_PGZ_GUARD;
4519 		meta[0].zm_guarded = true;
4520 		meta++;
4521 	}
4522 
4523 	for (uint32_t run = 0, n = 0; run < runs; run++) {
4524 		bool guarded = (guard_mask >> run) & 1;
4525 
4526 		for (uint32_t i = 0; i < chunk_pages; i++, n++) {
4527 			meta[n].zm_index = zone_index(z);
4528 			meta[n].zm_guarded = guarded;
4529 		}
4530 		if (guarded) {
4531 			meta[n].zm_index = zone_index(z);
4532 			meta[n].zm_chunk_len = ZM_PGZ_GUARD;
4533 			n++;
4534 		}
4535 	}
4536 	if (guards) {
4537 		os_atomic_add(&zone_guard_pages, guards, relaxed);
4538 	}
4539 
4540 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
4541 	if (__improbable(zone_caching_disabled < 0)) {
4542 		return zone_scramble_va_and_unlock(z, meta, runs, pages,
4543 		           chunk_pages, guard_mask);
4544 	}
4545 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) */
4546 
4547 	zone_lock(z);
4548 
4549 	for (uint32_t run = 0, n = 0; run < runs; run++) {
4550 		zone_meta_queue_push(z, &z->z_pageq_va, meta + n);
4551 		n += chunk_pages + ((guard_mask >> run) & 1);
4552 	}
4553 	z->z_va_cur += z->z_percpu ? runs : pages;
4554 }
4555 
4556 static inline void
ZONE_TRACE_VM_KERN_REQUEST_START(vm_size_t size)4557 ZONE_TRACE_VM_KERN_REQUEST_START(vm_size_t size)
4558 {
4559 #if DEBUG || DEVELOPMENT
4560 	VM_DEBUG_CONSTANT_EVENT(vm_kern_request, DBG_VM_KERN_REQUEST, DBG_FUNC_START,
4561 	    size, 0, 0, 0);
4562 #else
4563 	(void)size;
4564 #endif
4565 }
4566 
4567 static inline void
ZONE_TRACE_VM_KERN_REQUEST_END(uint32_t pages)4568 ZONE_TRACE_VM_KERN_REQUEST_END(uint32_t pages)
4569 {
4570 #if DEBUG || DEVELOPMENT
4571 	task_t task = current_task_early();
4572 	if (pages && task) {
4573 		ledger_credit(task->ledger, task_ledgers.pages_grabbed_kern, pages);
4574 	}
4575 	VM_DEBUG_CONSTANT_EVENT(vm_kern_request, DBG_VM_KERN_REQUEST, DBG_FUNC_END,
4576 	    pages, 0, 0, 0);
4577 #else
4578 	(void)pages;
4579 #endif
4580 }
4581 
4582 __attribute__((noinline))
4583 static void
__ZONE_MAP_EXHAUSTED_AND_WAITING_FOR_GC__(zone_t z,uint32_t pgs)4584 __ZONE_MAP_EXHAUSTED_AND_WAITING_FOR_GC__(zone_t z, uint32_t pgs)
4585 {
4586 	uint64_t wait_start = 0;
4587 	long mapped;
4588 
4589 	thread_wakeup(VM_PAGEOUT_GC_EVENT);
4590 
4591 	if (zone_supports_vm(z) || (current_thread()->options & TH_OPT_VMPRIV)) {
4592 		return;
4593 	}
4594 
4595 	mapped = os_atomic_load(&zone_pages_wired, relaxed);
4596 
4597 	/*
4598 	 * If the zone map is really exhausted, wait on the GC thread,
4599 	 * donating our priority (which is important because the GC
4600 	 * thread is at a rather low priority).
4601 	 */
4602 	for (uint32_t n = 1; mapped >= zone_pages_wired_max - pgs; n++) {
4603 		uint32_t wait_ms = n * (n + 1) / 2;
4604 		uint64_t interval;
4605 
4606 		if (n == 1) {
4607 			wait_start = mach_absolute_time();
4608 		} else {
4609 			thread_wakeup(VM_PAGEOUT_GC_EVENT);
4610 		}
4611 		if (zone_exhausted_timeout > 0 &&
4612 		    wait_ms > zone_exhausted_timeout) {
4613 			panic("zone map exhaustion: waited for %dms "
4614 			    "(pages: %ld, max: %ld, wanted: %d)",
4615 			    wait_ms, mapped, zone_pages_wired_max, pgs);
4616 		}
4617 
4618 		clock_interval_to_absolutetime_interval(wait_ms, NSEC_PER_MSEC,
4619 		    &interval);
4620 
4621 		lck_spin_lock(&zone_exhausted_lock);
4622 		lck_spin_sleep_with_inheritor(&zone_exhausted_lock,
4623 		    LCK_SLEEP_UNLOCK, &zone_pages_wired,
4624 		    vm_pageout_gc_thread, THREAD_UNINT, wait_start + interval);
4625 
4626 		mapped = os_atomic_load(&zone_pages_wired, relaxed);
4627 	}
4628 }
4629 
4630 static bool
zone_expand_wait_for_pages(bool waited)4631 zone_expand_wait_for_pages(bool waited)
4632 {
4633 	if (waited) {
4634 		return false;
4635 	}
4636 #if DEBUG || DEVELOPMENT
4637 	if (zalloc_simulate_vm_pressure) {
4638 		return false;
4639 	}
4640 #endif /* DEBUG || DEVELOPMENT */
4641 	return !vm_pool_low();
4642 }
4643 
4644 static inline void
zone_expand_async_schedule_if_allowed(zone_t zone)4645 zone_expand_async_schedule_if_allowed(zone_t zone)
4646 {
4647 	if (zone->z_async_refilling || zone->no_callout) {
4648 		return;
4649 	}
4650 
4651 	if (zone_exhausted(zone)) {
4652 		return;
4653 	}
4654 
4655 	if (__improbable(startup_phase < STARTUP_SUB_EARLY_BOOT)) {
4656 		return;
4657 	}
4658 
4659 	if (!vm_pool_low() || zone_supports_vm(zone)) {
4660 		zone->z_async_refilling = true;
4661 		thread_call_enter(&zone_expand_callout);
4662 	}
4663 }
4664 
4665 __attribute__((noinline))
4666 static bool
zalloc_expand_drain_exhausted_caches_locked(zone_t z)4667 zalloc_expand_drain_exhausted_caches_locked(zone_t z)
4668 {
4669 	struct zone_depot zd;
4670 	zone_magazine_t mag = NULL;
4671 
4672 	if (z->z_depot_size) {
4673 		z->z_depot_size = 0;
4674 		z->z_depot_cleanup = true;
4675 
4676 		zone_depot_init(&zd);
4677 		zone_depot_trim(z, 0, &zd);
4678 
4679 		zone_recirc_lock_nopreempt(z);
4680 		if (zd.zd_full) {
4681 			zone_depot_move_full(&z->z_recirc,
4682 			    &zd, zd.zd_full, NULL);
4683 		}
4684 		if (zd.zd_empty) {
4685 			zone_depot_move_empty(&z->z_recirc,
4686 			    &zd, zd.zd_empty, NULL);
4687 		}
4688 		zone_recirc_unlock_nopreempt(z);
4689 	}
4690 
4691 	zone_recirc_lock_nopreempt(z);
4692 	if (z->z_recirc.zd_full) {
4693 		mag = zone_depot_pop_head_full(&z->z_recirc, z);
4694 	}
4695 	zone_recirc_unlock_nopreempt(z);
4696 
4697 	if (mag) {
4698 		zone_reclaim_elements(z, zc_mag_size(), mag->zm_elems);
4699 		zone_magazine_free(mag);
4700 	}
4701 
4702 	return mag != NULL;
4703 }
4704 
4705 static bool
zalloc_needs_refill(zone_t zone,zalloc_flags_t flags)4706 zalloc_needs_refill(zone_t zone, zalloc_flags_t flags)
4707 {
4708 	if (zone->z_elems_free > zone->z_elems_rsv) {
4709 		return false;
4710 	}
4711 	if (!zone_exhausted(zone)) {
4712 		return true;
4713 	}
4714 	if (zone->z_pcpu_cache && zone->z_depot_size) {
4715 		if (zalloc_expand_drain_exhausted_caches_locked(zone)) {
4716 			return false;
4717 		}
4718 	}
4719 	return (flags & Z_NOFAIL) != 0;
4720 }
4721 
4722 static void
zone_wakeup_exhausted_waiters(zone_t z)4723 zone_wakeup_exhausted_waiters(zone_t z)
4724 {
4725 	z->z_exhausted_wait = false;
4726 	EVENT_INVOKE(ZONE_EXHAUSTED, zone_index(z), z, false);
4727 	thread_wakeup(&z->z_expander);
4728 }
4729 
4730 __attribute__((noinline))
4731 static void
__ZONE_EXHAUSTED_AND_WAITING_HARD__(zone_t z)4732 __ZONE_EXHAUSTED_AND_WAITING_HARD__(zone_t z)
4733 {
4734 	if (z->z_pcpu_cache && z->z_depot_size &&
4735 	    zalloc_expand_drain_exhausted_caches_locked(z)) {
4736 		return;
4737 	}
4738 
4739 	if (!z->z_exhausted_wait) {
4740 		zone_recirc_lock_nopreempt(z);
4741 		z->z_exhausted_wait = true;
4742 		zone_recirc_unlock_nopreempt(z);
4743 		EVENT_INVOKE(ZONE_EXHAUSTED, zone_index(z), z, true);
4744 	}
4745 
4746 	assert_wait(&z->z_expander, TH_UNINT);
4747 	zone_unlock(z);
4748 	thread_block(THREAD_CONTINUE_NULL);
4749 	zone_lock(z);
4750 }
4751 
4752 static pmap_mapping_type_t
zone_mapping_type(zone_t z)4753 zone_mapping_type(zone_t z)
4754 {
4755 	zone_security_flags_t zsflags = zone_security_config(z);
4756 
4757 	/*
4758 	 * If the zone has z_submap_idx is not Z_SUBMAP_IDX_DATA or
4759 	 * Z_SUBMAP_IDX_READ_ONLY, mark the corresponding mapping
4760 	 * type as PMAP_MAPPING_TYPE_RESTRICTED.
4761 	 */
4762 	switch (zsflags.z_submap_idx) {
4763 	case Z_SUBMAP_IDX_DATA:
4764 		return PMAP_MAPPING_TYPE_DEFAULT;
4765 	case Z_SUBMAP_IDX_READ_ONLY:
4766 		return PMAP_MAPPING_TYPE_ROZONE;
4767 	default:
4768 		return PMAP_MAPPING_TYPE_RESTRICTED;
4769 	}
4770 }
4771 
4772 static vm_prot_t
zone_page_prot(zone_security_flags_t zsflags)4773 zone_page_prot(zone_security_flags_t zsflags)
4774 {
4775 	switch (zsflags.z_submap_idx) {
4776 	case Z_SUBMAP_IDX_READ_ONLY:
4777 		return VM_PROT_READ;
4778 	default:
4779 		return VM_PROT_READ | VM_PROT_WRITE;
4780 	}
4781 }
4782 
4783 static void
zone_expand_locked(zone_t z,zalloc_flags_t flags)4784 zone_expand_locked(zone_t z, zalloc_flags_t flags)
4785 {
4786 	zone_security_flags_t zsflags = zone_security_config(z);
4787 	struct zone_expand ze = {
4788 		.ze_thread  = current_thread(),
4789 	};
4790 
4791 	if (!(ze.ze_thread->options & TH_OPT_VMPRIV) && zone_supports_vm(z)) {
4792 		ze.ze_thread->options |= TH_OPT_VMPRIV;
4793 		ze.ze_clear_priv = true;
4794 	}
4795 
4796 	if (ze.ze_thread->options & TH_OPT_VMPRIV) {
4797 		/*
4798 		 * When the thread is VM privileged,
4799 		 * vm_page_grab() will call VM_PAGE_WAIT()
4800 		 * without our knowledge, so we must assume
4801 		 * it's being called unfortunately.
4802 		 *
4803 		 * In practice it's not a big deal because
4804 		 * Z_NOPAGEWAIT is not really used on zones
4805 		 * that VM privileged threads are going to expand.
4806 		 */
4807 		ze.ze_pg_wait = true;
4808 		ze.ze_vm_priv = true;
4809 	}
4810 
4811 	for (;;) {
4812 		if (!z->z_permanent && !zalloc_needs_refill(z, flags)) {
4813 			goto out;
4814 		}
4815 
4816 		if (z->z_expander == NULL) {
4817 			z->z_expander = &ze;
4818 			break;
4819 		}
4820 
4821 		if (ze.ze_vm_priv && !z->z_expander->ze_vm_priv) {
4822 			change_sleep_inheritor(&z->z_expander, ze.ze_thread);
4823 			ze.ze_next = z->z_expander;
4824 			z->z_expander = &ze;
4825 			break;
4826 		}
4827 
4828 		if ((flags & Z_NOPAGEWAIT) && z->z_expander->ze_pg_wait) {
4829 			goto out;
4830 		}
4831 
4832 		z->z_expanding_wait = true;
4833 		hw_lck_ticket_sleep_with_inheritor(&z->z_lock, &zone_locks_grp,
4834 		    LCK_SLEEP_DEFAULT, &z->z_expander, z->z_expander->ze_thread,
4835 		    TH_UNINT, TIMEOUT_WAIT_FOREVER);
4836 	}
4837 
4838 	do {
4839 		struct zone_page_metadata *meta = NULL;
4840 		uint32_t new_va = 0, cur_pages = 0, min_pages = 0, pages = 0;
4841 		vm_page_t page_list = NULL;
4842 		vm_offset_t addr = 0;
4843 		int waited = 0;
4844 
4845 		if ((flags & Z_NOFAIL) && zone_exhausted(z)) {
4846 			__ZONE_EXHAUSTED_AND_WAITING_HARD__(z);
4847 			continue;         /* reevaluate if we really need it */
4848 		}
4849 
4850 		/*
4851 		 * While we hold the zone lock, look if there's VA we can:
4852 		 * - complete from partial pages,
4853 		 * - reuse from the sequester list.
4854 		 *
4855 		 * When the page is being populated we pretend we allocated
4856 		 * an extra element so that zone_gc() can't attempt to free
4857 		 * the chunk (as it could become empty while we wait for pages).
4858 		 */
4859 		if (zone_pva_is_null(z->z_pageq_va)) {
4860 			zone_allocate_va_locked(z, flags);
4861 		}
4862 
4863 		meta = zone_meta_queue_pop(z, &z->z_pageq_va);
4864 		addr = zone_meta_to_addr(meta);
4865 		if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
4866 			cur_pages = meta->zm_page_index;
4867 			meta -= cur_pages;
4868 			addr -= ptoa(cur_pages);
4869 			zone_meta_lock_in_partial(z, meta, cur_pages);
4870 		}
4871 		zone_unlock(z);
4872 
4873 		/*
4874 		 * And now allocate pages to populate our VA.
4875 		 */
4876 		min_pages = z->z_chunk_pages;
4877 #if !KASAN_CLASSIC
4878 		if (!z->z_percpu) {
4879 			min_pages = (uint32_t)atop(round_page(zone_elem_outer_offs(z) +
4880 			    zone_elem_outer_size(z)));
4881 		}
4882 #endif /* !KASAN_CLASSIC */
4883 
4884 		/*
4885 		 * Trigger jetsams via VM_PAGEOUT_GC_EVENT
4886 		 * if we're running out of zone memory
4887 		 */
4888 		if (__improbable(zone_map_nearing_exhaustion())) {
4889 			__ZONE_MAP_EXHAUSTED_AND_WAITING_FOR_GC__(z, min_pages);
4890 		}
4891 
4892 		ZONE_TRACE_VM_KERN_REQUEST_START(ptoa(z->z_chunk_pages - cur_pages));
4893 
4894 		while (pages < z->z_chunk_pages - cur_pages) {
4895 			uint_t grab_options = VM_PAGE_GRAB_OPTIONS_NONE;
4896 			vm_page_t m = vm_page_grab_options(grab_options);
4897 
4898 			if (m) {
4899 				pages++;
4900 				m->vmp_snext = page_list;
4901 				page_list = m;
4902 				vm_page_zero_fill(m);
4903 				continue;
4904 			}
4905 
4906 			if (pages >= min_pages &&
4907 			    !zone_expand_wait_for_pages(waited)) {
4908 				break;
4909 			}
4910 
4911 			if ((flags & Z_NOPAGEWAIT) == 0) {
4912 				/*
4913 				 * The first time we're about to wait for pages,
4914 				 * mention that to waiters and wake them all.
4915 				 *
4916 				 * Set `ze_pg_wait` in our zone_expand context
4917 				 * so that waiters who care do not wait again.
4918 				 */
4919 				if (!ze.ze_pg_wait) {
4920 					zone_lock(z);
4921 					if (z->z_expanding_wait) {
4922 						z->z_expanding_wait = false;
4923 						wakeup_all_with_inheritor(&z->z_expander,
4924 						    THREAD_AWAKENED);
4925 					}
4926 					ze.ze_pg_wait = true;
4927 					zone_unlock(z);
4928 				}
4929 
4930 				waited++;
4931 				VM_PAGE_WAIT();
4932 				continue;
4933 			}
4934 
4935 			/*
4936 			 * Undo everything and bail out:
4937 			 *
4938 			 * - free pages
4939 			 * - undo the fake allocation if any
4940 			 * - put the VA back on the VA page queue.
4941 			 */
4942 			vm_page_free_list(page_list, FALSE);
4943 			ZONE_TRACE_VM_KERN_REQUEST_END(pages);
4944 
4945 			zone_lock(z);
4946 
4947 			zone_expand_async_schedule_if_allowed(z);
4948 
4949 			if (cur_pages) {
4950 				zone_meta_unlock_from_partial(z, meta, cur_pages);
4951 			}
4952 			if (meta) {
4953 				zone_meta_queue_push(z, &z->z_pageq_va,
4954 				    meta + cur_pages);
4955 			}
4956 			goto page_shortage;
4957 		}
4958 		vm_object_t object;
4959 		object = kernel_object_default;
4960 		vm_object_lock(object);
4961 
4962 		kernel_memory_populate_object_and_unlock(object,
4963 		    addr + ptoa(cur_pages), addr + ptoa(cur_pages), ptoa(pages), page_list,
4964 		    zone_kma_flags(z, zsflags, flags), VM_KERN_MEMORY_ZONE,
4965 		    zone_page_prot(zsflags), zone_mapping_type(z));
4966 
4967 		ZONE_TRACE_VM_KERN_REQUEST_END(pages);
4968 
4969 		zcram_and_lock(z, addr, new_va, cur_pages, cur_pages + pages, 0);
4970 
4971 		/*
4972 		 * permanent zones only try once,
4973 		 * the retry loop is in the caller
4974 		 */
4975 	} while (!z->z_permanent && zalloc_needs_refill(z, flags));
4976 
4977 page_shortage:
4978 	if (z->z_expander == &ze) {
4979 		z->z_expander = ze.ze_next;
4980 	} else {
4981 		assert(z->z_expander->ze_next == &ze);
4982 		z->z_expander->ze_next = NULL;
4983 	}
4984 	if (z->z_expanding_wait) {
4985 		z->z_expanding_wait = false;
4986 		wakeup_all_with_inheritor(&z->z_expander, THREAD_AWAKENED);
4987 	}
4988 out:
4989 	if (ze.ze_clear_priv) {
4990 		ze.ze_thread->options &= ~TH_OPT_VMPRIV;
4991 	}
4992 }
4993 
4994 static void
zone_expand_async(__unused thread_call_param_t p0,__unused thread_call_param_t p1)4995 zone_expand_async(__unused thread_call_param_t p0, __unused thread_call_param_t p1)
4996 {
4997 	zone_foreach(z) {
4998 		if (z->no_callout) {
4999 			/* z_async_refilling will never be set */
5000 			continue;
5001 		}
5002 
5003 		if (!z->z_async_refilling) {
5004 			/*
5005 			 * avoid locking all zones, because the one(s)
5006 			 * we're looking for have been set _before_
5007 			 * thread_call_enter() was called, if we fail
5008 			 * to observe the bit, it means the thread-call
5009 			 * has been "dinged" again and we'll notice it then.
5010 			 */
5011 			continue;
5012 		}
5013 
5014 		zone_lock(z);
5015 		if (z->z_self && z->z_async_refilling) {
5016 			zone_expand_locked(z, Z_WAITOK);
5017 			/*
5018 			 * clearing _after_ we grow is important,
5019 			 * so that we avoid waking up the thread call
5020 			 * while we grow and cause to run a second time.
5021 			 */
5022 			z->z_async_refilling = false;
5023 		}
5024 		zone_unlock(z);
5025 	}
5026 }
5027 
5028 #endif /* !ZALLOC_TEST */
5029 #pragma mark zone jetsam integration
5030 #if !ZALLOC_TEST
5031 
5032 /*
5033  * We're being very conservative here and picking a value of 95%. We might need to lower this if
5034  * we find that we're not catching the problem and are still hitting zone map exhaustion panics.
5035  */
5036 #define ZONE_MAP_JETSAM_LIMIT_DEFAULT 95
5037 
5038 /*
5039  * Threshold above which largest zones should be included in the panic log
5040  */
5041 #define ZONE_MAP_EXHAUSTION_PRINT_PANIC 80
5042 
5043 /*
5044  * Trigger zone-map-exhaustion jetsams if the zone map is X% full,
5045  * where X=zone_map_jetsam_limit.
5046  *
5047  * Can be set via boot-arg "zone_map_jetsam_limit". Set to 95% by default.
5048  */
5049 TUNABLE_WRITEABLE(unsigned int, zone_map_jetsam_limit, "zone_map_jetsam_limit",
5050     ZONE_MAP_JETSAM_LIMIT_DEFAULT);
5051 
5052 kern_return_t
zone_map_jetsam_set_limit(uint32_t value)5053 zone_map_jetsam_set_limit(uint32_t value)
5054 {
5055 	if (value <= 0 || value > 100) {
5056 		return KERN_INVALID_VALUE;
5057 	}
5058 
5059 	zone_map_jetsam_limit = value;
5060 	os_atomic_store(&zone_pages_jetsam_threshold,
5061 	    zone_pages_wired_max * value / 100, relaxed);
5062 	return KERN_SUCCESS;
5063 }
5064 
5065 void
get_zone_map_size(uint64_t * current_size,uint64_t * capacity)5066 get_zone_map_size(uint64_t *current_size, uint64_t *capacity)
5067 {
5068 	vm_offset_t phys_pages = os_atomic_load(&zone_pages_wired, relaxed);
5069 	*current_size = ptoa_64(phys_pages);
5070 	*capacity = ptoa_64(zone_pages_wired_max);
5071 }
5072 
5073 void
get_largest_zone_info(char * zone_name,size_t zone_name_len,uint64_t * zone_size)5074 get_largest_zone_info(char *zone_name, size_t zone_name_len, uint64_t *zone_size)
5075 {
5076 	zone_t largest_zone = zone_find_largest(zone_size);
5077 
5078 	/*
5079 	 * Append kalloc heap name to zone name (if zone is used by kalloc)
5080 	 */
5081 	snprintf(zone_name, zone_name_len, "%s%s",
5082 	    zone_heap_name(largest_zone), largest_zone->z_name);
5083 }
5084 
5085 static bool
zone_map_nearing_threshold(unsigned int threshold)5086 zone_map_nearing_threshold(unsigned int threshold)
5087 {
5088 	uint64_t phys_pages = os_atomic_load(&zone_pages_wired, relaxed);
5089 	return phys_pages * 100 > zone_pages_wired_max * threshold;
5090 }
5091 
5092 bool
zone_map_nearing_exhaustion(void)5093 zone_map_nearing_exhaustion(void)
5094 {
5095 	vm_size_t pages = os_atomic_load(&zone_pages_wired, relaxed);
5096 
5097 	return pages >= os_atomic_load(&zone_pages_jetsam_threshold, relaxed);
5098 }
5099 
5100 
5101 #define VMENTRY_TO_VMOBJECT_COMPARISON_RATIO 98
5102 
5103 /*
5104  * Tries to kill a single process if it can attribute one to the largest zone. If not, wakes up the memorystatus thread
5105  * to walk through the jetsam priority bands and kill processes.
5106  */
5107 static zone_t
kill_process_in_largest_zone(void)5108 kill_process_in_largest_zone(void)
5109 {
5110 	pid_t pid = -1;
5111 	uint64_t zone_size = 0;
5112 	zone_t largest_zone = zone_find_largest(&zone_size);
5113 
5114 	printf("zone_map_exhaustion: Zone mapped %lld of %lld, used %lld, capacity %lld [jetsam limit %d%%]\n",
5115 	    ptoa_64(os_atomic_load(&zone_pages_wired, relaxed)),
5116 	    ptoa_64(zone_pages_wired_max),
5117 	    (uint64_t)zone_submaps_approx_size(),
5118 	    (uint64_t)mach_vm_range_size(&zone_info.zi_map_range),
5119 	    zone_map_jetsam_limit);
5120 	printf("zone_map_exhaustion: Largest zone %s%s, size %lu\n", zone_heap_name(largest_zone),
5121 	    largest_zone->z_name, (uintptr_t)zone_size);
5122 
5123 	/*
5124 	 * We want to make sure we don't call this function from userspace.
5125 	 * Or we could end up trying to synchronously kill the process
5126 	 * whose context we're in, causing the system to hang.
5127 	 */
5128 	assert(current_task() == kernel_task);
5129 
5130 	/*
5131 	 * If vm_object_zone is the largest, check to see if the number of
5132 	 * elements in vm_map_entry_zone is comparable.
5133 	 *
5134 	 * If so, consider vm_map_entry_zone as the largest. This lets us target
5135 	 * a specific process to jetsam to quickly recover from the zone map
5136 	 * bloat.
5137 	 */
5138 	if (largest_zone == vm_object_zone) {
5139 		unsigned int vm_object_zone_count = zone_count_allocated(vm_object_zone);
5140 		unsigned int vm_map_entry_zone_count = zone_count_allocated(vm_map_entry_zone);
5141 		/* Is the VM map entries zone count >= 98% of the VM objects zone count? */
5142 		if (vm_map_entry_zone_count >= ((vm_object_zone_count * VMENTRY_TO_VMOBJECT_COMPARISON_RATIO) / 100)) {
5143 			largest_zone = vm_map_entry_zone;
5144 			printf("zone_map_exhaustion: Picking VM map entries as the zone to target, size %lu\n",
5145 			    (uintptr_t)zone_size_wired(largest_zone));
5146 		}
5147 	}
5148 
5149 	/* TODO: Extend this to check for the largest process in other zones as well. */
5150 	if (largest_zone == vm_map_entry_zone) {
5151 		pid = find_largest_process_vm_map_entries();
5152 	} else {
5153 		printf("zone_map_exhaustion: Nothing to do for the largest zone [%s%s]. "
5154 		    "Waking up memorystatus thread.\n", zone_heap_name(largest_zone),
5155 		    largest_zone->z_name);
5156 	}
5157 	if (!memorystatus_kill_on_zone_map_exhaustion(pid)) {
5158 		printf("zone_map_exhaustion: Call to memorystatus failed, victim pid: %d\n", pid);
5159 	}
5160 
5161 	return largest_zone;
5162 }
5163 
5164 #endif /* !ZALLOC_TEST */
5165 #pragma mark probabilistic gzalloc
5166 #if !ZALLOC_TEST
5167 #if CONFIG_PROB_GZALLOC
5168 
5169 extern uint32_t random(void);
5170 struct pgz_backtrace {
5171 	uint32_t  pgz_depth;
5172 	int32_t   pgz_bt[MAX_ZTRACE_DEPTH];
5173 };
5174 
5175 static int32_t  PERCPU_DATA(pgz_sample_counter);
5176 static SECURITY_READ_ONLY_LATE(struct pgz_backtrace *) pgz_backtraces;
5177 static uint32_t pgz_uses;       /* number of zones using PGZ */
5178 static int32_t  pgz_slot_avail;
5179 #if OS_ATOMIC_HAS_LLSC
5180 struct zone_page_metadata *pgz_slot_head;
5181 #else
5182 static struct pgz_slot_head {
5183 	uint32_t psh_count;
5184 	uint32_t psh_slot;
5185 } pgz_slot_head;
5186 #endif
5187 struct zone_page_metadata *pgz_slot_tail;
5188 static SECURITY_READ_ONLY_LATE(vm_map_t) pgz_submap;
5189 
5190 static struct zone_page_metadata *
pgz_meta(uint32_t index)5191 pgz_meta(uint32_t index)
5192 {
5193 	return &zone_info.zi_pgz_meta[2 * index + 1];
5194 }
5195 
5196 static struct pgz_backtrace *
pgz_bt(uint32_t slot,bool free)5197 pgz_bt(uint32_t slot, bool free)
5198 {
5199 	return &pgz_backtraces[2 * slot + free];
5200 }
5201 
5202 static void
pgz_backtrace(struct pgz_backtrace * bt,void * fp)5203 pgz_backtrace(struct pgz_backtrace *bt, void *fp)
5204 {
5205 	struct backtrace_control ctl = {
5206 		.btc_frame_addr = (uintptr_t)fp,
5207 	};
5208 
5209 	bt->pgz_depth = (uint32_t)backtrace_packed(BTP_KERN_OFFSET_32,
5210 	    (uint8_t *)bt->pgz_bt, sizeof(bt->pgz_bt), &ctl, NULL) / 4;
5211 }
5212 
5213 static uint32_t
pgz_slot(vm_offset_t addr)5214 pgz_slot(vm_offset_t addr)
5215 {
5216 	return (uint32_t)((addr - zone_info.zi_pgz_range.min_address) >> (PAGE_SHIFT + 1));
5217 }
5218 
5219 static vm_offset_t
pgz_addr(uint32_t slot)5220 pgz_addr(uint32_t slot)
5221 {
5222 	return zone_info.zi_pgz_range.min_address + ptoa(2 * slot + 1);
5223 }
5224 
5225 static bool
pgz_sample(vm_offset_t addr,vm_size_t esize)5226 pgz_sample(vm_offset_t addr, vm_size_t esize)
5227 {
5228 	int32_t *counterp, cnt;
5229 
5230 	if (zone_addr_size_crosses_page(addr, esize)) {
5231 		return false;
5232 	}
5233 
5234 	/*
5235 	 * Note: accessing pgz_sample_counter is racy but this is
5236 	 *       kind of acceptable given that this is not
5237 	 *       a security load bearing feature.
5238 	 */
5239 
5240 	counterp = PERCPU_GET(pgz_sample_counter);
5241 	cnt = *counterp;
5242 	if (__probable(cnt > 0)) {
5243 		*counterp = cnt - 1;
5244 		return false;
5245 	}
5246 
5247 	if (pgz_slot_avail <= 0) {
5248 		return false;
5249 	}
5250 
5251 	/*
5252 	 * zalloc_random_uniform() might block, so when preemption is disabled,
5253 	 * set the counter to `-1` which will cause the next allocation
5254 	 * that can block to generate a new random value.
5255 	 *
5256 	 * No allocation on this CPU will sample until then.
5257 	 */
5258 	if (get_preemption_level()) {
5259 		*counterp = -1;
5260 	} else {
5261 		*counterp = zalloc_random_uniform32(0, 2 * pgz_sample_rate);
5262 	}
5263 
5264 	return cnt == 0;
5265 }
5266 
5267 static inline bool
pgz_slot_alloc(uint32_t * slot)5268 pgz_slot_alloc(uint32_t *slot)
5269 {
5270 	struct zone_page_metadata *m;
5271 	uint32_t tries = 100;
5272 
5273 	disable_preemption();
5274 
5275 #if OS_ATOMIC_USE_LLSC
5276 	int32_t ov, nv;
5277 	os_atomic_rmw_loop(&pgz_slot_avail, ov, nv, relaxed, {
5278 		if (__improbable(ov <= 0)) {
5279 		        os_atomic_rmw_loop_give_up({
5280 				enable_preemption();
5281 				return false;
5282 			});
5283 		}
5284 		nv = ov - 1;
5285 	});
5286 #else
5287 	if (__improbable(os_atomic_dec_orig(&pgz_slot_avail, relaxed) <= 0)) {
5288 		os_atomic_inc(&pgz_slot_avail, relaxed);
5289 		enable_preemption();
5290 		return false;
5291 	}
5292 #endif
5293 
5294 again:
5295 	if (__improbable(tries-- == 0)) {
5296 		/*
5297 		 * Too much contention,
5298 		 * extremely unlikely but do not stay stuck.
5299 		 */
5300 		os_atomic_inc(&pgz_slot_avail, relaxed);
5301 		enable_preemption();
5302 		return false;
5303 	}
5304 
5305 #if OS_ATOMIC_HAS_LLSC
5306 	uint32_t castries = 20;
5307 	do {
5308 		if (__improbable(castries-- == 0)) {
5309 			/*
5310 			 * rdar://115922110 On many many cores devices,
5311 			 * this can fail for a very long time.
5312 			 */
5313 			goto again;
5314 		}
5315 
5316 		m = os_atomic_load_exclusive(&pgz_slot_head, dependency);
5317 		if (__improbable(m->zm_pgz_slot_next == NULL)) {
5318 			/*
5319 			 * Either we are waiting for an enqueuer (unlikely)
5320 			 * or we are competing with another core and
5321 			 * are looking at a popped element.
5322 			 */
5323 			os_atomic_clear_exclusive();
5324 			goto again;
5325 		}
5326 	} while (!os_atomic_store_exclusive(&pgz_slot_head,
5327 	    m->zm_pgz_slot_next, relaxed));
5328 #else
5329 	struct zone_page_metadata *base = zone_info.zi_pgz_meta;
5330 	struct pgz_slot_head ov, nv;
5331 	os_atomic_rmw_loop(&pgz_slot_head, ov, nv, dependency, {
5332 		m = &base[ov.psh_slot * 2];
5333 		if (__improbable(m->zm_pgz_slot_next == NULL)) {
5334 		        /*
5335 		         * Either we are waiting for an enqueuer (unlikely)
5336 		         * or we are competing with another core and
5337 		         * are looking at a popped element.
5338 		         */
5339 		        os_atomic_rmw_loop_give_up(goto again);
5340 		}
5341 		nv.psh_count = ov.psh_count + 1;
5342 		nv.psh_slot  = (uint32_t)((m->zm_pgz_slot_next - base) / 2);
5343 	});
5344 #endif
5345 
5346 	enable_preemption();
5347 
5348 	m->zm_pgz_slot_next = NULL;
5349 	*slot = (uint32_t)((m - zone_info.zi_pgz_meta) / 2);
5350 	return true;
5351 }
5352 
5353 static inline bool
pgz_slot_free(uint32_t slot)5354 pgz_slot_free(uint32_t slot)
5355 {
5356 	struct zone_page_metadata *m = &zone_info.zi_pgz_meta[2 * slot];
5357 	struct zone_page_metadata *t;
5358 
5359 	disable_preemption();
5360 	t = os_atomic_xchg(&pgz_slot_tail, m, relaxed);
5361 	os_atomic_store(&t->zm_pgz_slot_next, m, release);
5362 	os_atomic_inc(&pgz_slot_avail, relaxed);
5363 	enable_preemption();
5364 
5365 	return true;
5366 }
5367 
5368 /*!
5369  * @function pgz_protect()
5370  *
5371  * @brief
5372  * Try to protect an allocation with PGZ.
5373  *
5374  * @param zone          The zone the allocation was made against.
5375  * @param addr          An allocated element address to protect.
5376  * @param fp            The caller frame pointer (for the backtrace).
5377  * @returns             The new address for the element, or @c addr.
5378  */
5379 __attribute__((noinline))
5380 static vm_offset_t
pgz_protect(zone_t zone,vm_offset_t addr,void * fp)5381 pgz_protect(zone_t zone, vm_offset_t addr, void *fp)
5382 {
5383 	kern_return_t kr;
5384 	uint32_t slot;
5385 	uint_t flags = 0;
5386 
5387 	if (!pgz_slot_alloc(&slot)) {
5388 		return addr;
5389 	}
5390 
5391 	/*
5392 	 * Try to double-map the page (may fail if Z_NOWAIT).
5393 	 * we will always find a PA because pgz_init() pre-expanded the pmap.
5394 	 */
5395 	pmap_paddr_t pa = kvtophys(trunc_page(addr));
5396 	vm_offset_t  new_addr = pgz_addr(slot);
5397 	kr = pmap_enter_options_addr(kernel_pmap, new_addr, pa,
5398 	    VM_PROT_READ | VM_PROT_WRITE, VM_PROT_NONE, flags, TRUE,
5399 	    get_preemption_level() ? (PMAP_OPTIONS_NOWAIT | PMAP_OPTIONS_NOPREEMPT) : 0,
5400 	    NULL, PMAP_MAPPING_TYPE_INFER);
5401 
5402 	if (__improbable(kr != KERN_SUCCESS)) {
5403 		pgz_slot_free(slot);
5404 		return addr;
5405 	}
5406 
5407 	struct zone_page_metadata tmp = {
5408 		.zm_chunk_len = ZM_PGZ_ALLOCATED,
5409 		.zm_index     = zone_index(zone),
5410 	};
5411 	struct zone_page_metadata *meta = pgz_meta(slot);
5412 
5413 	os_atomic_store(&meta->zm_bits, tmp.zm_bits, relaxed);
5414 	os_atomic_store(&meta->zm_pgz_orig_addr, addr, relaxed);
5415 	pgz_backtrace(pgz_bt(slot, false), fp);
5416 
5417 	return new_addr + (addr & PAGE_MASK);
5418 }
5419 
5420 /*!
5421  * @function pgz_unprotect()
5422  *
5423  * @brief
5424  * Release a PGZ slot and returns the original address of a freed element.
5425  *
5426  * @param addr          A PGZ protected element address.
5427  * @param fp            The caller frame pointer (for the backtrace).
5428  * @returns             The non protected address for the element
5429  *                      that was passed to @c pgz_protect().
5430  */
5431 __attribute__((noinline))
5432 static vm_offset_t
pgz_unprotect(vm_offset_t addr,void * fp)5433 pgz_unprotect(vm_offset_t addr, void *fp)
5434 {
5435 	struct zone_page_metadata *meta;
5436 	struct zone_page_metadata tmp;
5437 	uint32_t slot;
5438 
5439 	slot = pgz_slot(addr);
5440 	meta = zone_meta_from_addr(addr);
5441 	tmp  = *meta;
5442 	if (tmp.zm_chunk_len != ZM_PGZ_ALLOCATED) {
5443 		goto double_free;
5444 	}
5445 
5446 	pmap_remove_options(kernel_pmap, vm_memtag_canonicalize_address(trunc_page(addr)),
5447 	    vm_memtag_canonicalize_address(trunc_page(addr) + PAGE_SIZE),
5448 	    PMAP_OPTIONS_REMOVE | PMAP_OPTIONS_NOPREEMPT);
5449 
5450 	pgz_backtrace(pgz_bt(slot, true), fp);
5451 
5452 	tmp.zm_chunk_len = ZM_PGZ_FREE;
5453 	tmp.zm_bits = os_atomic_xchg(&meta->zm_bits, tmp.zm_bits, relaxed);
5454 	if (tmp.zm_chunk_len != ZM_PGZ_ALLOCATED) {
5455 		goto double_free;
5456 	}
5457 
5458 	pgz_slot_free(slot);
5459 	return tmp.zm_pgz_orig_addr;
5460 
5461 double_free:
5462 	panic_fault_address = addr;
5463 	meta->zm_chunk_len = ZM_PGZ_DOUBLE_FREE;
5464 	panic("probabilistic gzalloc double free: %p", (void *)addr);
5465 }
5466 
5467 bool
pgz_owned(mach_vm_address_t addr)5468 pgz_owned(mach_vm_address_t addr)
5469 {
5470 	return mach_vm_range_contains(&zone_info.zi_pgz_range, vm_memtag_canonicalize_address(addr));
5471 }
5472 
5473 
5474 __attribute__((always_inline))
5475 vm_offset_t
__pgz_decode(mach_vm_address_t addr,mach_vm_size_t size)5476 __pgz_decode(mach_vm_address_t addr, mach_vm_size_t size)
5477 {
5478 	struct zone_page_metadata *meta;
5479 
5480 	if (__probable(!pgz_owned(addr))) {
5481 		return (vm_offset_t)addr;
5482 	}
5483 
5484 	if (zone_addr_size_crosses_page(addr, size)) {
5485 		panic("invalid size for PGZ protected address %p:%p",
5486 		    (void *)addr, (void *)(addr + size));
5487 	}
5488 
5489 	meta = zone_meta_from_addr((vm_offset_t)addr);
5490 	if (meta->zm_chunk_len != ZM_PGZ_ALLOCATED) {
5491 		panic_fault_address = (vm_offset_t)addr;
5492 		panic("probabilistic gzalloc use-after-free: %p", (void *)addr);
5493 	}
5494 
5495 	return trunc_page(meta->zm_pgz_orig_addr) + (addr & PAGE_MASK);
5496 }
5497 
5498 __attribute__((always_inline))
5499 vm_offset_t
__pgz_decode_allow_invalid(vm_offset_t addr,zone_id_t zid)5500 __pgz_decode_allow_invalid(vm_offset_t addr, zone_id_t zid)
5501 {
5502 	struct zone_page_metadata *meta;
5503 	struct zone_page_metadata tmp;
5504 
5505 	if (__probable(!pgz_owned(addr))) {
5506 		return addr;
5507 	}
5508 
5509 	meta = zone_meta_from_addr(addr);
5510 	tmp.zm_bits = os_atomic_load(&meta->zm_bits, relaxed);
5511 
5512 	addr = trunc_page(meta->zm_pgz_orig_addr) + (addr & PAGE_MASK);
5513 
5514 	if (tmp.zm_chunk_len != ZM_PGZ_ALLOCATED) {
5515 		return 0;
5516 	}
5517 
5518 	if (zid != ZONE_ID_ANY && tmp.zm_index != zid) {
5519 		return 0;
5520 	}
5521 
5522 	return addr;
5523 }
5524 
5525 static void
pgz_zone_init(zone_t z)5526 pgz_zone_init(zone_t z)
5527 {
5528 	char zn[MAX_ZONE_NAME];
5529 	char zv[MAX_ZONE_NAME];
5530 	char key[30];
5531 
5532 	if (zone_elem_inner_size(z) > PAGE_SIZE) {
5533 		return;
5534 	}
5535 
5536 	if (pgz_all) {
5537 		os_atomic_inc(&pgz_uses, relaxed);
5538 		z->z_pgz_tracked = true;
5539 		return;
5540 	}
5541 
5542 	snprintf(zn, sizeof(zn), "%s%s", zone_heap_name(z), zone_name(z));
5543 
5544 	for (int i = 1;; i++) {
5545 		snprintf(key, sizeof(key), "pgz%d", i);
5546 		if (!PE_parse_boot_argn(key, zv, sizeof(zv))) {
5547 			break;
5548 		}
5549 		if (track_this_zone(zn, zv) || track_kalloc_zones(z, zv)) {
5550 			os_atomic_inc(&pgz_uses, relaxed);
5551 			z->z_pgz_tracked = true;
5552 			break;
5553 		}
5554 	}
5555 }
5556 
5557 __startup_func
5558 static vm_size_t
pgz_get_size(void)5559 pgz_get_size(void)
5560 {
5561 	if (pgz_slots == UINT32_MAX) {
5562 		/*
5563 		 * Scale with RAM size: ~200 slots a G
5564 		 */
5565 		pgz_slots = (uint32_t)(sane_size >> 22);
5566 	}
5567 
5568 	/*
5569 	 * Make sure that the slot allocation scheme works.
5570 	 * see pgz_slot_alloc() / pgz_slot_free();
5571 	 */
5572 	if (pgz_slots < zpercpu_count() * 4) {
5573 		pgz_slots = zpercpu_count() * 4;
5574 	}
5575 	if (pgz_slots >= UINT16_MAX) {
5576 		pgz_slots = UINT16_MAX - 1;
5577 	}
5578 
5579 	/*
5580 	 * Quarantine is 33% of slots by default, no more than 90%.
5581 	 */
5582 	if (pgz_quarantine == 0) {
5583 		pgz_quarantine = pgz_slots / 3;
5584 	}
5585 	if (pgz_quarantine > pgz_slots * 9 / 10) {
5586 		pgz_quarantine = pgz_slots * 9 / 10;
5587 	}
5588 	pgz_slot_avail = pgz_slots - pgz_quarantine;
5589 
5590 	return ptoa(2 * pgz_slots + 1);
5591 }
5592 
5593 __startup_func
5594 static void
pgz_init(void)5595 pgz_init(void)
5596 {
5597 	if (!pgz_uses) {
5598 		return;
5599 	}
5600 
5601 	if (pgz_sample_rate == 0) {
5602 		/*
5603 		 * If no rate was provided, pick a random one that scales
5604 		 * with the number of protected zones.
5605 		 *
5606 		 * Use a binomal distribution to avoid having too many
5607 		 * really fast sample rates.
5608 		 */
5609 		uint32_t factor = MIN(pgz_uses, 10);
5610 		uint32_t max_rate = 1000 * factor;
5611 		uint32_t min_rate =  100 * factor;
5612 
5613 		pgz_sample_rate = (zalloc_random_uniform32(min_rate, max_rate) +
5614 		    zalloc_random_uniform32(min_rate, max_rate)) / 2;
5615 	}
5616 
5617 	struct mach_vm_range *r = &zone_info.zi_pgz_range;
5618 	zone_info.zi_pgz_meta = zone_meta_from_addr(r->min_address);
5619 	zone_meta_populate(r->min_address, mach_vm_range_size(r));
5620 
5621 	for (size_t i = 0; i < 2 * pgz_slots + 1; i += 2) {
5622 		zone_info.zi_pgz_meta[i].zm_chunk_len = ZM_PGZ_GUARD;
5623 	}
5624 
5625 	for (size_t i = 1; i < pgz_slots; i++) {
5626 		zone_info.zi_pgz_meta[2 * i - 1].zm_pgz_slot_next =
5627 		    &zone_info.zi_pgz_meta[2 * i + 1];
5628 	}
5629 #if OS_ATOMIC_HAS_LLSC
5630 	pgz_slot_head = &zone_info.zi_pgz_meta[1];
5631 #endif
5632 	pgz_slot_tail = &zone_info.zi_pgz_meta[2 * pgz_slots - 1];
5633 
5634 	pgz_backtraces = zalloc_permanent(sizeof(struct pgz_backtrace) *
5635 	    2 * pgz_slots, ZALIGN_PTR);
5636 
5637 	/*
5638 	 * expand the pmap so that pmap_enter_options_addr()
5639 	 * in pgz_protect() never need to call pmap_expand().
5640 	 */
5641 	for (uint32_t slot = 0; slot < pgz_slots; slot++) {
5642 		(void)pmap_enter_options_addr(kernel_pmap, pgz_addr(slot), 0,
5643 		    VM_PROT_NONE, VM_PROT_NONE, 0, FALSE,
5644 		    PMAP_OPTIONS_NOENTER, NULL, PMAP_MAPPING_TYPE_INFER);
5645 	}
5646 
5647 	/* do this last as this will enable pgz */
5648 	percpu_foreach(counter, pgz_sample_counter) {
5649 		*counter = zalloc_random_uniform32(0, 2 * pgz_sample_rate);
5650 	}
5651 }
5652 STARTUP(EARLY_BOOT, STARTUP_RANK_MIDDLE, pgz_init);
5653 
5654 static void
panic_display_pgz_bt(bool has_syms,uint32_t slot,bool free)5655 panic_display_pgz_bt(bool has_syms, uint32_t slot, bool free)
5656 {
5657 	struct pgz_backtrace *bt = pgz_bt(slot, free);
5658 	const char *what = free ? "Free" : "Allocation";
5659 	uintptr_t buf[MAX_ZTRACE_DEPTH];
5660 
5661 	if (!ml_validate_nofault((vm_offset_t)bt, sizeof(*bt))) {
5662 		paniclog_append_noflush("  Can't decode %s Backtrace\n", what);
5663 		return;
5664 	}
5665 
5666 	backtrace_unpack(BTP_KERN_OFFSET_32, buf, MAX_ZTRACE_DEPTH,
5667 	    (uint8_t *)bt->pgz_bt, 4 * bt->pgz_depth);
5668 
5669 	paniclog_append_noflush("  %s Backtrace:\n", what);
5670 	for (uint32_t i = 0; i < bt->pgz_depth && i < MAX_ZTRACE_DEPTH; i++) {
5671 		if (has_syms) {
5672 			paniclog_append_noflush("    %p ", (void *)buf[i]);
5673 			panic_print_symbol_name(buf[i]);
5674 			paniclog_append_noflush("\n");
5675 		} else {
5676 			paniclog_append_noflush("    %p\n", (void *)buf[i]);
5677 		}
5678 	}
5679 	kmod_panic_dump((vm_offset_t *)buf, bt->pgz_depth);
5680 }
5681 
5682 static void
panic_display_pgz_uaf_info(bool has_syms,vm_offset_t addr)5683 panic_display_pgz_uaf_info(bool has_syms, vm_offset_t addr)
5684 {
5685 	struct zone_page_metadata *meta;
5686 	vm_offset_t elem, esize;
5687 	const char *type;
5688 	const char *prob;
5689 	uint32_t slot;
5690 	zone_t z;
5691 
5692 	slot = pgz_slot(addr);
5693 	meta = pgz_meta(slot);
5694 	elem = pgz_addr(slot) + (meta->zm_pgz_orig_addr & PAGE_MASK);
5695 
5696 	paniclog_append_noflush("Probabilistic GZAlloc Report:\n");
5697 
5698 	if (ml_validate_nofault((vm_offset_t)meta, sizeof(*meta)) &&
5699 	    meta->zm_index &&
5700 	    meta->zm_index < os_atomic_load(&num_zones, relaxed)) {
5701 		z = &zone_array[meta->zm_index];
5702 	} else {
5703 		paniclog_append_noflush("  Zone    : <unknown>\n");
5704 		paniclog_append_noflush("  Address : %p\n", (void *)addr);
5705 		paniclog_append_noflush("\n");
5706 		return;
5707 	}
5708 
5709 	esize = zone_elem_inner_size(z);
5710 	paniclog_append_noflush("  Zone    : %s%s\n",
5711 	    zone_heap_name(z), zone_name(z));
5712 	paniclog_append_noflush("  Address : %p\n", (void *)addr);
5713 	paniclog_append_noflush("  Element : [%p, %p) of size %d\n",
5714 	    (void *)elem, (void *)(elem + esize), (uint32_t)esize);
5715 
5716 	if (addr < elem) {
5717 		type = "out-of-bounds(underflow) + use-after-free";
5718 		prob = "low";
5719 	} else if (meta->zm_chunk_len == ZM_PGZ_DOUBLE_FREE) {
5720 		type = "double-free";
5721 		prob = "high";
5722 	} else if (addr < elem + esize) {
5723 		type = "use-after-free";
5724 		prob = "high";
5725 	} else if (meta->zm_chunk_len != ZM_PGZ_ALLOCATED) {
5726 		type = "out-of-bounds + use-after-free";
5727 		prob = "low";
5728 	} else {
5729 		type = "out-of-bounds";
5730 		prob = "high";
5731 	}
5732 	paniclog_append_noflush("  Kind    : %s (%s confidence)\n",
5733 	    type, prob);
5734 	if (addr < elem) {
5735 		paniclog_append_noflush("  Access  : %d byte(s) before\n",
5736 		    (uint32_t)(elem - addr) + 1);
5737 	} else if (addr < elem + esize) {
5738 		paniclog_append_noflush("  Access  : %d byte(s) inside\n",
5739 		    (uint32_t)(addr - elem) + 1);
5740 	} else {
5741 		paniclog_append_noflush("  Access  : %d byte(s) past\n",
5742 		    (uint32_t)(addr - (elem + esize)) + 1);
5743 	}
5744 
5745 	panic_display_pgz_bt(has_syms, slot, false);
5746 	if (meta->zm_chunk_len != ZM_PGZ_ALLOCATED) {
5747 		panic_display_pgz_bt(has_syms, slot, true);
5748 	}
5749 
5750 	paniclog_append_noflush("\n");
5751 }
5752 
5753 vm_offset_t pgz_protect_for_testing_only(zone_t zone, vm_offset_t addr, void *fp);
5754 vm_offset_t
pgz_protect_for_testing_only(zone_t zone,vm_offset_t addr,void * fp)5755 pgz_protect_for_testing_only(zone_t zone, vm_offset_t addr, void *fp)
5756 {
5757 	return pgz_protect(zone, addr, fp);
5758 }
5759 
5760 
5761 #endif /* CONFIG_PROB_GZALLOC */
5762 #endif /* !ZALLOC_TEST */
5763 #pragma mark zfree
5764 #if !ZALLOC_TEST
5765 
5766 /*!
5767  * @defgroup zfree
5768  * @{
5769  *
5770  * @brief
5771  * The codepath for zone frees.
5772  *
5773  * @discussion
5774  * There are 4 major ways to allocate memory that end up in the zone allocator:
5775  * - @c zfree()
5776  * - @c zfree_percpu()
5777  * - @c kfree*()
5778  * - @c zfree_permanent()
5779  *
5780  * While permanent zones have their own allocation scheme, all other codepaths
5781  * will eventually go through the @c zfree_ext() choking point.
5782  */
5783 
5784 __header_always_inline void
zfree_drop(zone_t zone,vm_offset_t addr)5785 zfree_drop(zone_t zone, vm_offset_t addr)
5786 {
5787 	vm_offset_t esize = zone_elem_outer_size(zone);
5788 	struct zone_page_metadata *meta;
5789 	vm_offset_t eidx;
5790 
5791 	meta = zone_element_resolve(zone, addr, &eidx);
5792 
5793 	if (!zone_meta_mark_free(meta, eidx)) {
5794 		zone_meta_double_free_panic(zone, addr, __func__);
5795 	}
5796 
5797 	vm_offset_t old_size = meta->zm_alloc_size;
5798 	vm_offset_t max_size = ptoa(meta->zm_chunk_len) + ZM_ALLOC_SIZE_LOCK;
5799 	vm_offset_t new_size = zone_meta_alloc_size_sub(zone, meta, esize);
5800 
5801 	if (new_size == 0) {
5802 		/* whether the page was on the intermediate or all_used, queue, move it to free */
5803 		zone_meta_requeue(zone, &zone->z_pageq_empty, meta);
5804 		zone->z_wired_empty += meta->zm_chunk_len;
5805 	} else if (old_size + esize > max_size) {
5806 		/* first free element on page, move from all_used */
5807 		zone_meta_requeue(zone, &zone->z_pageq_partial, meta);
5808 	}
5809 
5810 	if (__improbable(zone->z_exhausted_wait)) {
5811 		zone_wakeup_exhausted_waiters(zone);
5812 	}
5813 }
5814 
5815 __attribute__((noinline))
5816 static void
zfree_item(zone_t zone,vm_offset_t addr)5817 zfree_item(zone_t zone, vm_offset_t addr)
5818 {
5819 	/* transfer preemption count to lock */
5820 	zone_lock_nopreempt_check_contention(zone);
5821 
5822 	zfree_drop(zone, addr);
5823 	zone->z_elems_free += 1;
5824 
5825 	zone_unlock(zone);
5826 }
5827 
5828 static void
zfree_cached_depot_recirculate(zone_t zone,uint32_t depot_max,zone_cache_t cache)5829 zfree_cached_depot_recirculate(
5830 	zone_t                  zone,
5831 	uint32_t                depot_max,
5832 	zone_cache_t            cache)
5833 {
5834 	smr_t smr = zone_cache_smr(cache);
5835 	smr_seq_t seq;
5836 	uint32_t n;
5837 
5838 	zone_recirc_lock_nopreempt_check_contention(zone);
5839 
5840 	n = cache->zc_depot.zd_full;
5841 	if (n >= depot_max) {
5842 		/*
5843 		 * If SMR is in use, rotate the entire chunk of magazines.
5844 		 *
5845 		 * If the head of the recirculation layer is ready to be
5846 		 * reused, pull them back to refill a little.
5847 		 */
5848 		seq = zone_depot_move_full(&zone->z_recirc,
5849 		    &cache->zc_depot, smr ? n : n - depot_max / 2, NULL);
5850 
5851 		if (smr) {
5852 			smr_deferred_advance_commit(smr, seq);
5853 			if (depot_max > 1 && zone_depot_poll(&zone->z_recirc, smr)) {
5854 				zone_depot_move_full(&cache->zc_depot,
5855 				    &zone->z_recirc, depot_max / 2, NULL);
5856 			}
5857 		}
5858 	}
5859 
5860 	n = depot_max - cache->zc_depot.zd_full;
5861 	if (n > zone->z_recirc.zd_empty) {
5862 		n = zone->z_recirc.zd_empty;
5863 	}
5864 	if (n) {
5865 		zone_depot_move_empty(&cache->zc_depot, &zone->z_recirc,
5866 		    n, zone);
5867 	}
5868 
5869 	zone_recirc_unlock_nopreempt(zone);
5870 }
5871 
5872 static zone_cache_t
zfree_cached_recirculate(zone_t zone,zone_cache_t cache)5873 zfree_cached_recirculate(zone_t zone, zone_cache_t cache)
5874 {
5875 	zone_magazine_t mag = NULL, tmp = NULL;
5876 	smr_t smr = zone_cache_smr(cache);
5877 	bool wakeup_exhausted = false;
5878 
5879 	if (zone->z_recirc.zd_empty == 0) {
5880 		mag = zone_magazine_alloc(Z_NOWAIT);
5881 	}
5882 
5883 	zone_recirc_lock_nopreempt_check_contention(zone);
5884 
5885 	if (mag == NULL && zone->z_recirc.zd_empty) {
5886 		mag = zone_depot_pop_head_empty(&zone->z_recirc, zone);
5887 		__builtin_assume(mag);
5888 	}
5889 	if (mag) {
5890 		tmp = zone_magazine_replace(cache, mag, true);
5891 		if (smr) {
5892 			smr_deferred_advance_commit(smr, tmp->zm_seq);
5893 		}
5894 		if (zone_security_array[zone_index(zone)].z_lifo) {
5895 			zone_depot_insert_head_full(&zone->z_recirc, tmp);
5896 		} else {
5897 			zone_depot_insert_tail_full(&zone->z_recirc, tmp);
5898 		}
5899 
5900 		wakeup_exhausted = zone->z_exhausted_wait;
5901 	}
5902 
5903 	zone_recirc_unlock_nopreempt(zone);
5904 
5905 	if (__improbable(wakeup_exhausted)) {
5906 		zone_lock_nopreempt(zone);
5907 		if (zone->z_exhausted_wait) {
5908 			zone_wakeup_exhausted_waiters(zone);
5909 		}
5910 		zone_unlock_nopreempt(zone);
5911 	}
5912 
5913 	return mag ? cache : NULL;
5914 }
5915 
5916 __attribute__((noinline))
5917 static zone_cache_t
zfree_cached_trim(zone_t zone,zone_cache_t cache)5918 zfree_cached_trim(zone_t zone, zone_cache_t cache)
5919 {
5920 	zone_magazine_t mag = NULL, tmp = NULL;
5921 	uint32_t depot_max;
5922 
5923 	depot_max = os_atomic_load(&zone->z_depot_size, relaxed);
5924 	if (depot_max) {
5925 		zone_depot_lock_nopreempt(cache);
5926 
5927 		if (cache->zc_depot.zd_empty == 0) {
5928 			zfree_cached_depot_recirculate(zone, depot_max, cache);
5929 		}
5930 
5931 		if (__probable(cache->zc_depot.zd_empty)) {
5932 			mag = zone_depot_pop_head_empty(&cache->zc_depot, NULL);
5933 			__builtin_assume(mag);
5934 		} else {
5935 			mag = zone_magazine_alloc(Z_NOWAIT);
5936 		}
5937 		if (mag) {
5938 			tmp = zone_magazine_replace(cache, mag, true);
5939 			zone_depot_insert_tail_full(&cache->zc_depot, tmp);
5940 		}
5941 
5942 		zone_depot_unlock_nopreempt(cache);
5943 
5944 		return mag ? cache : NULL;
5945 	}
5946 
5947 	return zfree_cached_recirculate(zone, cache);
5948 }
5949 
5950 __attribute__((always_inline))
5951 static inline zone_cache_t
zfree_cached_get_pcpu_cache(zone_t zone,int cpu)5952 zfree_cached_get_pcpu_cache(zone_t zone, int cpu)
5953 {
5954 	zone_cache_t cache = zpercpu_get_cpu(zone->z_pcpu_cache, cpu);
5955 
5956 	if (__probable(cache->zc_free_cur < zc_mag_size())) {
5957 		return cache;
5958 	}
5959 
5960 	if (__probable(cache->zc_alloc_cur < zc_mag_size())) {
5961 		zone_cache_swap_magazines(cache);
5962 		return cache;
5963 	}
5964 
5965 	return zfree_cached_trim(zone, cache);
5966 }
5967 
5968 __attribute__((always_inline))
5969 static inline zone_cache_t
zfree_cached_get_pcpu_cache_smr(zone_t zone,int cpu)5970 zfree_cached_get_pcpu_cache_smr(zone_t zone, int cpu)
5971 {
5972 	zone_cache_t cache = zpercpu_get_cpu(zone->z_pcpu_cache, cpu);
5973 	size_t idx = cache->zc_free_cur;
5974 
5975 	if (__probable(idx + 1 < zc_mag_size())) {
5976 		return cache;
5977 	}
5978 
5979 	/*
5980 	 * when SMR is in use, the bucket is tagged early with
5981 	 * @c smr_deferred_advance(), which costs a full barrier,
5982 	 * but performs no store.
5983 	 *
5984 	 * When zones hit the recirculation layer, the advance is commited,
5985 	 * under the recirculation lock (see zfree_cached_recirculate()).
5986 	 *
5987 	 * When done this way, the zone contention detection mechanism
5988 	 * will adjust the size of the per-cpu depots gracefully, which
5989 	 * mechanically reduces the pace of these commits as usage increases.
5990 	 */
5991 
5992 	if (__probable(idx + 1 == zc_mag_size())) {
5993 		zone_magazine_t mag;
5994 
5995 		mag = (zone_magazine_t)((uintptr_t)cache->zc_free_elems -
5996 		    offsetof(struct zone_magazine, zm_elems));
5997 		mag->zm_seq = smr_deferred_advance(zone_cache_smr(cache));
5998 		return cache;
5999 	}
6000 
6001 	return zfree_cached_trim(zone, cache);
6002 }
6003 
6004 __attribute__((always_inline))
6005 static inline vm_offset_t
__zcache_mark_invalid(zone_t zone,vm_offset_t elem,uint64_t combined_size)6006 __zcache_mark_invalid(zone_t zone, vm_offset_t elem, uint64_t combined_size)
6007 {
6008 	struct zone_page_metadata *meta;
6009 	vm_offset_t offs;
6010 
6011 #pragma unused(combined_size)
6012 #if CONFIG_PROB_GZALLOC
6013 	if (__improbable(pgz_owned(elem))) {
6014 		elem = pgz_unprotect(elem, __builtin_frame_address(0));
6015 	}
6016 #endif /* CONFIG_PROB_GZALLOC */
6017 
6018 	meta = zone_meta_from_addr(elem);
6019 	if (!from_zone_map(elem, 1) || !zone_has_index(zone, meta->zm_index)) {
6020 		zone_invalid_element_panic(zone, elem);
6021 	}
6022 
6023 	offs = (elem & PAGE_MASK) - zone_elem_inner_offs(zone);
6024 	if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
6025 		offs += ptoa(meta->zm_page_index);
6026 	}
6027 
6028 	if (!Z_FAST_ALIGNED(offs, zone->z_align_magic)) {
6029 		zone_invalid_element_panic(zone, elem);
6030 	}
6031 
6032 #if VM_TAG_SIZECLASSES
6033 	if (__improbable(zone->z_uses_tags)) {
6034 		vm_tag_t *slot;
6035 
6036 		slot = zba_extra_ref_ptr(meta->zm_bitmap,
6037 		    Z_FAST_QUO(offs, zone->z_quo_magic));
6038 		vm_tag_update_zone_size(*slot, zone->z_tags_sizeclass,
6039 		    -(long)ZFREE_ELEM_SIZE(combined_size));
6040 		*slot = VM_KERN_MEMORY_NONE;
6041 	}
6042 #endif /* VM_TAG_SIZECLASSES */
6043 
6044 #if KASAN_CLASSIC
6045 	kasan_free(elem, ZFREE_ELEM_SIZE(combined_size),
6046 	    ZFREE_USER_SIZE(combined_size), zone_elem_redzone(zone),
6047 	    zone->z_percpu, __builtin_frame_address(0));
6048 #endif
6049 
6050 	elem = zone_tag_free_element(zone, elem, ZFREE_ELEM_SIZE(combined_size));
6051 	return elem;
6052 }
6053 
6054 __attribute__((always_inline))
6055 void *
zcache_mark_invalid(zone_t zone,void * elem)6056 zcache_mark_invalid(zone_t zone, void *elem)
6057 {
6058 	vm_size_t esize = zone_elem_inner_size(zone);
6059 
6060 	ZFREE_LOG(zone, (vm_offset_t)elem, 1);
6061 	return (void *)__zcache_mark_invalid(zone, (vm_offset_t)elem, ZFREE_PACK_SIZE(esize, esize));
6062 }
6063 
6064 /*
6065  *     The function is noinline when zlog can be used so that the backtracing can
6066  *     reliably skip the zfree_ext() and zfree_log()
6067  *     boring frames.
6068  */
6069 #if ZALLOC_ENABLE_LOGGING
6070 __attribute__((noinline))
6071 #endif /* ZALLOC_ENABLE_LOGGING */
6072 void
zfree_ext(zone_t zone,zone_stats_t zstats,void * addr,uint64_t combined_size)6073 zfree_ext(zone_t zone, zone_stats_t zstats, void *addr, uint64_t combined_size)
6074 {
6075 	vm_offset_t esize = ZFREE_ELEM_SIZE(combined_size);
6076 	vm_offset_t elem = (vm_offset_t)addr;
6077 	int cpu;
6078 
6079 	DTRACE_VM2(zfree, zone_t, zone, void*, elem);
6080 
6081 	ZFREE_LOG(zone, elem, 1);
6082 	elem = __zcache_mark_invalid(zone, elem, combined_size);
6083 
6084 	disable_preemption();
6085 	cpu = cpu_number();
6086 	zpercpu_get_cpu(zstats, cpu)->zs_mem_freed += esize;
6087 
6088 #if KASAN_CLASSIC
6089 	if (zone->z_kasan_quarantine && startup_phase >= STARTUP_SUB_ZALLOC) {
6090 		struct kasan_quarantine_result kqr;
6091 
6092 		kqr  = kasan_quarantine(elem, esize);
6093 		elem = kqr.addr;
6094 		zone = kqr.zone;
6095 		if (elem == 0) {
6096 			return enable_preemption();
6097 		}
6098 	}
6099 #endif
6100 
6101 	if (zone->z_pcpu_cache) {
6102 		zone_cache_t cache = zfree_cached_get_pcpu_cache(zone, cpu);
6103 
6104 		if (__probable(cache)) {
6105 			cache->zc_free_elems[cache->zc_free_cur++] = elem;
6106 			return enable_preemption();
6107 		}
6108 	}
6109 
6110 	return zfree_item(zone, elem);
6111 }
6112 
6113 __attribute__((always_inline))
6114 static inline zstack_t
zcache_free_stack_to_cpu(zone_id_t zid,zone_cache_t cache,zstack_t stack,vm_size_t esize,zone_cache_ops_t ops,bool zero)6115 zcache_free_stack_to_cpu(
6116 	zone_id_t               zid,
6117 	zone_cache_t            cache,
6118 	zstack_t                stack,
6119 	vm_size_t               esize,
6120 	zone_cache_ops_t        ops,
6121 	bool                    zero)
6122 {
6123 	size_t       n = MIN(zc_mag_size() - cache->zc_free_cur, stack.z_count);
6124 	vm_offset_t *p;
6125 
6126 	stack.z_count -= n;
6127 	cache->zc_free_cur += n;
6128 	p = cache->zc_free_elems + cache->zc_free_cur;
6129 
6130 	do {
6131 		void *o = zstack_pop_no_delta(&stack);
6132 
6133 		if (ops) {
6134 			o = ops->zc_op_mark_invalid(zid, o);
6135 		} else {
6136 			if (zero) {
6137 				bzero(o, esize);
6138 			}
6139 			o = (void *)__zcache_mark_invalid(zone_by_id(zid),
6140 			    (vm_offset_t)o, ZFREE_PACK_SIZE(esize, esize));
6141 		}
6142 		*--p  = (vm_offset_t)o;
6143 	} while (--n > 0);
6144 
6145 	return stack;
6146 }
6147 
6148 __attribute__((always_inline))
6149 static inline void
zcache_free_1_ext(zone_id_t zid,void * addr,zone_cache_ops_t ops)6150 zcache_free_1_ext(zone_id_t zid, void *addr, zone_cache_ops_t ops)
6151 {
6152 	vm_offset_t elem = (vm_offset_t)addr;
6153 	zone_cache_t cache;
6154 	vm_size_t esize;
6155 	zone_t zone = zone_by_id(zid);
6156 	int cpu;
6157 
6158 	ZFREE_LOG(zone, elem, 1);
6159 
6160 	disable_preemption();
6161 	cpu = cpu_number();
6162 	esize = zone_elem_inner_size(zone);
6163 	zpercpu_get_cpu(zone->z_stats, cpu)->zs_mem_freed += esize;
6164 	if (!ops) {
6165 		addr = (void *)__zcache_mark_invalid(zone, elem,
6166 		    ZFREE_PACK_SIZE(esize, esize));
6167 	}
6168 	cache = zfree_cached_get_pcpu_cache(zone, cpu);
6169 	if (__probable(cache)) {
6170 		if (ops) {
6171 			addr = ops->zc_op_mark_invalid(zid, addr);
6172 		}
6173 		cache->zc_free_elems[cache->zc_free_cur++] = elem;
6174 		enable_preemption();
6175 	} else if (ops) {
6176 		enable_preemption();
6177 		os_atomic_dec(&zone_by_id(zid)->z_elems_avail, relaxed);
6178 		ops->zc_op_free(zid, addr);
6179 	} else {
6180 		zfree_item(zone, elem);
6181 	}
6182 }
6183 
6184 __attribute__((always_inline))
6185 static inline void
zcache_free_n_ext(zone_id_t zid,zstack_t stack,zone_cache_ops_t ops,bool zero)6186 zcache_free_n_ext(zone_id_t zid, zstack_t stack, zone_cache_ops_t ops, bool zero)
6187 {
6188 	zone_t zone = zone_by_id(zid);
6189 	zone_cache_t cache;
6190 	vm_size_t esize;
6191 	int cpu;
6192 
6193 	ZFREE_LOG(zone, stack.z_head, stack.z_count);
6194 
6195 	disable_preemption();
6196 	cpu = cpu_number();
6197 	esize = zone_elem_inner_size(zone);
6198 	zpercpu_get_cpu(zone->z_stats, cpu)->zs_mem_freed +=
6199 	    stack.z_count * esize;
6200 
6201 	for (;;) {
6202 		cache = zfree_cached_get_pcpu_cache(zone, cpu);
6203 		if (__probable(cache)) {
6204 			stack = zcache_free_stack_to_cpu(zid, cache,
6205 			    stack, esize, ops, zero);
6206 			enable_preemption();
6207 		} else if (ops) {
6208 			enable_preemption();
6209 			os_atomic_dec(&zone->z_elems_avail, relaxed);
6210 			ops->zc_op_free(zid, zstack_pop(&stack));
6211 		} else {
6212 			vm_offset_t addr = (vm_offset_t)zstack_pop(&stack);
6213 
6214 			if (zero) {
6215 				bzero((void *)addr, esize);
6216 			}
6217 			addr = __zcache_mark_invalid(zone, addr,
6218 			    ZFREE_PACK_SIZE(esize, esize));
6219 			zfree_item(zone, addr);
6220 		}
6221 
6222 		if (stack.z_count == 0) {
6223 			break;
6224 		}
6225 
6226 		disable_preemption();
6227 		cpu = cpu_number();
6228 	}
6229 }
6230 
6231 void
6232 (zcache_free)(zone_id_t zid, void *addr, zone_cache_ops_t ops)
6233 {
6234 	__builtin_assume(ops != NULL);
6235 	zcache_free_1_ext(zid, addr, ops);
6236 }
6237 
6238 void
6239 (zcache_free_n)(zone_id_t zid, zstack_t stack, zone_cache_ops_t ops)
6240 {
6241 	__builtin_assume(ops != NULL);
6242 	zcache_free_n_ext(zid, stack, ops, false);
6243 }
6244 
6245 void
6246 (zfree_n)(zone_id_t zid, zstack_t stack)
6247 {
6248 	zcache_free_n_ext(zid, stack, NULL, true);
6249 }
6250 
6251 void
6252 (zfree_nozero)(zone_id_t zid, void *addr)
6253 {
6254 	zcache_free_1_ext(zid, addr, NULL);
6255 }
6256 
6257 void
6258 (zfree_nozero_n)(zone_id_t zid, zstack_t stack)
6259 {
6260 	zcache_free_n_ext(zid, stack, NULL, false);
6261 }
6262 
6263 void
6264 (zfree)(zone_t zov, void *addr)
6265 {
6266 	zone_t zone = zov->z_self;
6267 	zone_stats_t zstats = zov->z_stats;
6268 	vm_offset_t esize = zone_elem_inner_size(zone);
6269 
6270 	assert(zone > &zone_array[ZONE_ID__LAST_RO]);
6271 	assert(!zone->z_percpu && !zone->z_permanent && !zone->z_smr);
6272 	vm_memtag_bzero(addr, esize);
6273 
6274 	zfree_ext(zone, zstats, addr, ZFREE_PACK_SIZE(esize, esize));
6275 }
6276 
6277 __attribute__((noinline))
6278 void
zfree_percpu(union zone_or_view zov,void * addr)6279 zfree_percpu(union zone_or_view zov, void *addr)
6280 {
6281 	zone_t zone = zov.zov_view->zv_zone;
6282 	zone_stats_t zstats = zov.zov_view->zv_stats;
6283 	vm_offset_t esize = zone_elem_inner_size(zone);
6284 
6285 	assert(zone > &zone_array[ZONE_ID__LAST_RO]);
6286 	assert(zone->z_percpu);
6287 	addr = (void *)__zpcpu_demangle(addr);
6288 	zpercpu_foreach_cpu(i) {
6289 		vm_memtag_bzero((char *)addr + ptoa(i), esize);
6290 	}
6291 	zfree_ext(zone, zstats, addr, ZFREE_PACK_SIZE(esize, esize));
6292 }
6293 
6294 void
6295 (zfree_id)(zone_id_t zid, void *addr)
6296 {
6297 	(zfree)(&zone_array[zid], addr);
6298 }
6299 
6300 void
6301 (zfree_ro)(zone_id_t zid, void *addr)
6302 {
6303 	assert(zid >= ZONE_ID__FIRST_RO && zid <= ZONE_ID__LAST_RO);
6304 	zone_t zone = zone_by_id(zid);
6305 	zone_stats_t zstats = zone->z_stats;
6306 	vm_offset_t esize = zone_ro_size_params[zid].z_elem_size;
6307 
6308 #if ZSECURITY_CONFIG(READ_ONLY)
6309 	assert(zone_security_array[zid].z_submap_idx == Z_SUBMAP_IDX_READ_ONLY);
6310 	pmap_ro_zone_bzero(zid, (vm_offset_t)addr, 0, esize);
6311 #else
6312 	(void)zid;
6313 	bzero(addr, esize);
6314 #endif /* !KASAN_CLASSIC */
6315 	zfree_ext(zone, zstats, addr, ZFREE_PACK_SIZE(esize, esize));
6316 }
6317 
6318 __attribute__((noinline))
6319 static void
zfree_item_smr(zone_t zone,vm_offset_t addr)6320 zfree_item_smr(zone_t zone, vm_offset_t addr)
6321 {
6322 	zone_cache_t cache = zpercpu_get_cpu(zone->z_pcpu_cache, 0);
6323 	vm_size_t esize = zone_elem_inner_size(zone);
6324 
6325 	/*
6326 	 * This should be taken extremely rarely:
6327 	 * this happens if we failed allocating an empty bucket.
6328 	 */
6329 	smr_synchronize(zone_cache_smr(cache));
6330 
6331 	cache->zc_free((void *)addr, esize);
6332 	addr = __zcache_mark_invalid(zone, addr, ZFREE_PACK_SIZE(esize, esize));
6333 
6334 	zfree_item(zone, addr);
6335 }
6336 
6337 void
6338 (zfree_smr)(zone_t zone, void *addr)
6339 {
6340 	vm_offset_t elem = (vm_offset_t)addr;
6341 	vm_offset_t esize;
6342 	zone_cache_t cache;
6343 	int cpu;
6344 
6345 	ZFREE_LOG(zone, elem, 1);
6346 
6347 	disable_preemption();
6348 	cpu   = cpu_number();
6349 #if MACH_ASSERT
6350 	cache = zpercpu_get_cpu(zone->z_pcpu_cache, cpu);
6351 	assert(!smr_entered_cpu_noblock(cache->zc_smr, cpu));
6352 #endif
6353 	esize = zone_elem_inner_size(zone);
6354 	zpercpu_get_cpu(zone->z_stats, cpu)->zs_mem_freed += esize;
6355 	cache = zfree_cached_get_pcpu_cache_smr(zone, cpu);
6356 	if (__probable(cache)) {
6357 		cache->zc_free_elems[cache->zc_free_cur++] = elem;
6358 		enable_preemption();
6359 	} else {
6360 		zfree_item_smr(zone, elem);
6361 	}
6362 }
6363 
6364 void
6365 (zfree_id_smr)(zone_id_t zid, void *addr)
6366 {
6367 	(zfree_smr)(&zone_array[zid], addr);
6368 }
6369 
6370 void
kfree_type_impl_internal(kalloc_type_view_t kt_view,void * ptr __unsafe_indexable)6371 kfree_type_impl_internal(
6372 	kalloc_type_view_t  kt_view,
6373 	void               *ptr __unsafe_indexable)
6374 {
6375 	zone_t zsig = kt_view->kt_zsig;
6376 	zone_t z = kt_view->kt_zv.zv_zone;
6377 	struct zone_page_metadata *meta;
6378 	zone_id_t zidx_meta;
6379 	zone_security_flags_t zsflags_meta;
6380 	zone_security_flags_t zsflags_z = zone_security_config(z);
6381 	zone_security_flags_t zsflags_zsig;
6382 
6383 	if (NULL == ptr) {
6384 		return;
6385 	}
6386 
6387 	meta = zone_meta_from_addr((vm_offset_t) ptr);
6388 	zidx_meta = meta->zm_index;
6389 	zsflags_meta = zone_security_array[zidx_meta];
6390 
6391 	if ((zsflags_z.z_kheap_id == KHEAP_ID_DATA_BUFFERS) ||
6392 	    zone_has_index(z, zidx_meta)) {
6393 		return (zfree)(&kt_view->kt_zv, ptr);
6394 	}
6395 	zsflags_zsig = zone_security_config(zsig);
6396 	if (zsflags_meta.z_sig_eq == zsflags_zsig.z_sig_eq) {
6397 		z = zone_array + zidx_meta;
6398 		return (zfree)(z, ptr);
6399 	}
6400 
6401 	return (zfree)(kt_view->kt_zshared, ptr);
6402 }
6403 
6404 /*! @} */
6405 #endif /* !ZALLOC_TEST */
6406 #pragma mark zalloc
6407 #if !ZALLOC_TEST
6408 
6409 /*!
6410  * @defgroup zalloc
6411  * @{
6412  *
6413  * @brief
6414  * The codepath for zone allocations.
6415  *
6416  * @discussion
6417  * There are 4 major ways to allocate memory that end up in the zone allocator:
6418  * - @c zalloc(), @c zalloc_flags(), ...
6419  * - @c zalloc_percpu()
6420  * - @c kalloc*()
6421  * - @c zalloc_permanent()
6422  *
6423  * While permanent zones have their own allocation scheme, all other codepaths
6424  * will eventually go through the @c zalloc_ext() choking point.
6425  *
6426  * @c zalloc_return() is the final function everyone tail calls into,
6427  * which prepares the element for consumption by the caller and deals with
6428  * common treatment (zone logging, tags, kasan, validation, ...).
6429  */
6430 
6431 /*!
6432  * @function zalloc_import
6433  *
6434  * @brief
6435  * Import @c n elements in the specified array, opposite of @c zfree_drop().
6436  *
6437  * @param zone          The zone to import elements from
6438  * @param elems         The array to import into
6439  * @param n             The number of elements to import. Must be non zero,
6440  *                      and smaller than @c zone->z_elems_free.
6441  */
6442 __header_always_inline vm_size_t
zalloc_import(zone_t zone,vm_offset_t * elems,zalloc_flags_t flags,uint32_t n)6443 zalloc_import(
6444 	zone_t                  zone,
6445 	vm_offset_t            *elems,
6446 	zalloc_flags_t          flags,
6447 	uint32_t                n)
6448 {
6449 	vm_offset_t esize = zone_elem_outer_size(zone);
6450 	vm_offset_t offs  = zone_elem_inner_offs(zone);
6451 	zone_stats_t zs;
6452 	int cpu = cpu_number();
6453 	uint32_t i = 0;
6454 
6455 	zs = zpercpu_get_cpu(zone->z_stats, cpu);
6456 
6457 	if (__improbable(zone_caching_disabled < 0)) {
6458 		/*
6459 		 * In the first 10s after boot, mess with
6460 		 * the scan position in order to make early
6461 		 * allocations patterns less predictable.
6462 		 */
6463 		zone_early_scramble_rr(zone, cpu, zs);
6464 	}
6465 
6466 	do {
6467 		vm_offset_t page, eidx, size = 0;
6468 		struct zone_page_metadata *meta;
6469 
6470 		if (!zone_pva_is_null(zone->z_pageq_partial)) {
6471 			meta = zone_pva_to_meta(zone->z_pageq_partial);
6472 			page = zone_pva_to_addr(zone->z_pageq_partial);
6473 		} else if (!zone_pva_is_null(zone->z_pageq_empty)) {
6474 			meta = zone_pva_to_meta(zone->z_pageq_empty);
6475 			page = zone_pva_to_addr(zone->z_pageq_empty);
6476 			zone_counter_sub(zone, z_wired_empty, meta->zm_chunk_len);
6477 		} else {
6478 			zone_accounting_panic(zone, "z_elems_free corruption");
6479 		}
6480 
6481 		zone_meta_validate(zone, meta, page);
6482 
6483 		vm_offset_t old_size = meta->zm_alloc_size;
6484 		vm_offset_t max_size = ptoa(meta->zm_chunk_len) + ZM_ALLOC_SIZE_LOCK;
6485 
6486 		do {
6487 			eidx = zone_meta_find_and_clear_bit(zone, zs, meta, flags);
6488 			elems[i++] = page + offs + eidx * esize;
6489 			size += esize;
6490 		} while (i < n && old_size + size + esize <= max_size);
6491 
6492 		vm_offset_t new_size = zone_meta_alloc_size_add(zone, meta, size);
6493 
6494 		if (new_size + esize > max_size) {
6495 			zone_meta_requeue(zone, &zone->z_pageq_full, meta);
6496 		} else if (old_size == 0) {
6497 			/* remove from free, move to intermediate */
6498 			zone_meta_requeue(zone, &zone->z_pageq_partial, meta);
6499 		}
6500 	} while (i < n);
6501 
6502 	n = zone_counter_sub(zone, z_elems_free, n);
6503 	if (zone->z_pcpu_cache == NULL && zone->z_elems_free_min > n) {
6504 		zone->z_elems_free_min = n;
6505 	}
6506 
6507 	return zone_elem_inner_size(zone);
6508 }
6509 
6510 __attribute__((always_inline))
6511 static inline vm_offset_t
__zcache_mark_valid(zone_t zone,vm_offset_t addr,zalloc_flags_t flags)6512 __zcache_mark_valid(zone_t zone, vm_offset_t addr, zalloc_flags_t flags)
6513 {
6514 #pragma unused(zone, flags)
6515 #if KASAN_CLASSIC || CONFIG_PROB_GZALLOC || VM_TAG_SIZECLASSES
6516 	vm_offset_t esize = zone_elem_inner_size(zone);
6517 #endif
6518 
6519 	addr = vm_memtag_fixup_ptr(addr);
6520 
6521 #if VM_TAG_SIZECLASSES
6522 	if (__improbable(zone->z_uses_tags)) {
6523 		struct zone_page_metadata *meta;
6524 		vm_offset_t offs;
6525 		vm_tag_t *slot;
6526 		vm_tag_t tag;
6527 
6528 		tag  = zalloc_flags_get_tag(flags);
6529 		meta = zone_meta_from_addr(addr);
6530 		offs = (addr & PAGE_MASK) - zone_elem_inner_offs(zone);
6531 		if (meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
6532 			offs += ptoa(meta->zm_page_index);
6533 		}
6534 
6535 		slot = zba_extra_ref_ptr(meta->zm_bitmap,
6536 		    Z_FAST_QUO(offs, zone->z_quo_magic));
6537 		*slot = tag;
6538 
6539 		vm_tag_update_zone_size(tag, zone->z_tags_sizeclass,
6540 		    (long)esize);
6541 	}
6542 #endif /* VM_TAG_SIZECLASSES */
6543 
6544 #if CONFIG_PROB_GZALLOC
6545 	if (zone->z_pgz_tracked && pgz_sample(addr, esize)) {
6546 		addr = pgz_protect(zone, addr, __builtin_frame_address(0));
6547 	}
6548 #endif
6549 
6550 #if KASAN_CLASSIC
6551 	/*
6552 	 * KASAN_CLASSIC integration of kalloc heaps are handled by kalloc_ext()
6553 	 */
6554 	if ((flags & Z_SKIP_KASAN) == 0) {
6555 		kasan_alloc(addr, esize, esize, zone_elem_redzone(zone),
6556 		    (flags & Z_PCPU), __builtin_frame_address(0));
6557 	}
6558 #endif /* KASAN_CLASSIC */
6559 
6560 	return addr;
6561 }
6562 
6563 __attribute__((always_inline))
6564 void *
zcache_mark_valid(zone_t zone,void * addr)6565 zcache_mark_valid(zone_t zone, void *addr)
6566 {
6567 	addr = (void *)__zcache_mark_valid(zone, (vm_offset_t)addr, 0);
6568 	ZALLOC_LOG(zone, (vm_offset_t)addr, 1);
6569 	return addr;
6570 }
6571 
6572 /*!
6573  * @function zalloc_return
6574  *
6575  * @brief
6576  * Performs the tail-end of the work required on allocations before the caller
6577  * uses them.
6578  *
6579  * @discussion
6580  * This function is called without any zone lock held,
6581  * and preemption back to the state it had when @c zalloc_ext() was called.
6582  *
6583  * @param zone          The zone we're allocating from.
6584  * @param addr          The element we just allocated.
6585  * @param flags         The flags passed to @c zalloc_ext() (for Z_ZERO).
6586  * @param elem_size     The element size for this zone.
6587  */
6588 __attribute__((always_inline))
6589 static struct kalloc_result
zalloc_return(zone_t zone,vm_offset_t addr,zalloc_flags_t flags,vm_offset_t elem_size)6590 zalloc_return(
6591 	zone_t                  zone,
6592 	vm_offset_t             addr,
6593 	zalloc_flags_t          flags,
6594 	vm_offset_t             elem_size)
6595 {
6596 	addr = __zcache_mark_valid(zone, addr, flags);
6597 #if ZALLOC_ENABLE_ZERO_CHECK
6598 	zalloc_validate_element(zone, addr, elem_size, flags);
6599 #endif /* ZALLOC_ENABLE_ZERO_CHECK */
6600 	ZALLOC_LOG(zone, addr, 1);
6601 
6602 	DTRACE_VM2(zalloc, zone_t, zone, void*, addr);
6603 	return (struct kalloc_result){ (void *)addr, elem_size };
6604 }
6605 
6606 static vm_size_t
zalloc_get_shared_threshold(zone_t zone,vm_size_t esize)6607 zalloc_get_shared_threshold(zone_t zone, vm_size_t esize)
6608 {
6609 	if (esize <= 512) {
6610 		return zone_early_thres_mul * page_size / 4;
6611 	} else if (esize < 2048) {
6612 		return zone_early_thres_mul * esize * 8;
6613 	}
6614 	return zone_early_thres_mul * zone->z_chunk_elems * esize;
6615 }
6616 
6617 __attribute__((noinline))
6618 static struct kalloc_result
zalloc_item(zone_t zone,zone_stats_t zstats,zalloc_flags_t flags)6619 zalloc_item(zone_t zone, zone_stats_t zstats, zalloc_flags_t flags)
6620 {
6621 	vm_offset_t esize, addr;
6622 	zone_stats_t zs;
6623 
6624 	zone_lock_nopreempt_check_contention(zone);
6625 
6626 	zs = zpercpu_get(zstats);
6627 	if (__improbable(zone->z_elems_free <= zone->z_elems_rsv / 2)) {
6628 		if ((flags & Z_NOWAIT) || zone->z_elems_free) {
6629 			zone_expand_async_schedule_if_allowed(zone);
6630 		} else {
6631 			zone_expand_locked(zone, flags);
6632 		}
6633 		if (__improbable(zone->z_elems_free == 0)) {
6634 			zs->zs_alloc_fail++;
6635 			zone_unlock(zone);
6636 			if (__improbable(flags & Z_NOFAIL)) {
6637 				zone_nofail_panic(zone);
6638 			}
6639 			DTRACE_VM2(zalloc, zone_t, zone, void*, NULL);
6640 			return (struct kalloc_result){ };
6641 		}
6642 	}
6643 
6644 	esize = zalloc_import(zone, &addr, flags, 1);
6645 	zs->zs_mem_allocated += esize;
6646 
6647 	if (__improbable(!zone_share_always &&
6648 	    !os_atomic_load(&zs->zs_alloc_not_shared, relaxed))) {
6649 		if (flags & Z_SET_NOTSHARED) {
6650 			vm_size_t shared_threshold = zalloc_get_shared_threshold(zone, esize);
6651 
6652 			if (zs->zs_mem_allocated >= shared_threshold) {
6653 				zpercpu_foreach(zs_cpu, zstats) {
6654 					os_atomic_store(&zs_cpu->zs_alloc_not_shared, 1, relaxed);
6655 				}
6656 			}
6657 		}
6658 	}
6659 	zone_unlock(zone);
6660 
6661 	return zalloc_return(zone, addr, flags, esize);
6662 }
6663 
6664 static void
zalloc_cached_import(zone_t zone,zalloc_flags_t flags,zone_cache_t cache)6665 zalloc_cached_import(
6666 	zone_t                  zone,
6667 	zalloc_flags_t          flags,
6668 	zone_cache_t            cache)
6669 {
6670 	uint16_t n_elems = zc_mag_size();
6671 
6672 	zone_lock_nopreempt(zone);
6673 
6674 	if (__probable(!zone_caching_disabled &&
6675 	    zone->z_elems_free > zone->z_elems_rsv / 2)) {
6676 		if (__improbable(zone->z_elems_free <= zone->z_elems_rsv)) {
6677 			zone_expand_async_schedule_if_allowed(zone);
6678 		}
6679 		if (zone->z_elems_free < n_elems) {
6680 			n_elems = (uint16_t)zone->z_elems_free;
6681 		}
6682 		zalloc_import(zone, cache->zc_alloc_elems, flags, n_elems);
6683 		cache->zc_alloc_cur = n_elems;
6684 	}
6685 
6686 	zone_unlock_nopreempt(zone);
6687 }
6688 
6689 static void
zalloc_cached_depot_recirculate(zone_t zone,uint32_t depot_max,zone_cache_t cache,smr_t smr)6690 zalloc_cached_depot_recirculate(
6691 	zone_t                  zone,
6692 	uint32_t                depot_max,
6693 	zone_cache_t            cache,
6694 	smr_t                   smr)
6695 {
6696 	smr_seq_t seq;
6697 	uint32_t n;
6698 
6699 	zone_recirc_lock_nopreempt_check_contention(zone);
6700 
6701 	n = cache->zc_depot.zd_empty;
6702 	if (n >= depot_max) {
6703 		zone_depot_move_empty(&zone->z_recirc, &cache->zc_depot,
6704 		    n - depot_max / 2, NULL);
6705 	}
6706 
6707 	n = cache->zc_depot.zd_full;
6708 	if (smr && n) {
6709 		/*
6710 		 * if SMR is in use, it means smr_poll() failed,
6711 		 * so rotate the entire chunk of magazines in order
6712 		 * to let the sequence numbers age.
6713 		 */
6714 		seq = zone_depot_move_full(&zone->z_recirc, &cache->zc_depot,
6715 		    n, NULL);
6716 		smr_deferred_advance_commit(smr, seq);
6717 	}
6718 
6719 	n = depot_max - cache->zc_depot.zd_empty;
6720 	if (n > zone->z_recirc.zd_full) {
6721 		n = zone->z_recirc.zd_full;
6722 	}
6723 
6724 	if (n && zone_depot_poll(&zone->z_recirc, smr)) {
6725 		zone_depot_move_full(&cache->zc_depot, &zone->z_recirc,
6726 		    n, zone);
6727 	}
6728 
6729 	zone_recirc_unlock_nopreempt(zone);
6730 }
6731 
6732 static void
zalloc_cached_reuse_smr(zone_t z,zone_cache_t cache,zone_magazine_t mag)6733 zalloc_cached_reuse_smr(zone_t z, zone_cache_t cache, zone_magazine_t mag)
6734 {
6735 	zone_smr_free_cb_t zc_free = cache->zc_free;
6736 	vm_size_t esize = zone_elem_inner_size(z);
6737 
6738 	for (uint16_t i = 0; i < zc_mag_size(); i++) {
6739 		vm_offset_t elem = mag->zm_elems[i];
6740 
6741 		zc_free((void *)elem, zone_elem_inner_size(z));
6742 		elem = __zcache_mark_invalid(z, elem,
6743 		    ZFREE_PACK_SIZE(esize, esize));
6744 		mag->zm_elems[i] = elem;
6745 	}
6746 }
6747 
6748 static void
zalloc_cached_recirculate(zone_t zone,zone_cache_t cache)6749 zalloc_cached_recirculate(
6750 	zone_t                  zone,
6751 	zone_cache_t            cache)
6752 {
6753 	zone_magazine_t mag = NULL;
6754 
6755 	zone_recirc_lock_nopreempt_check_contention(zone);
6756 
6757 	if (zone_depot_poll(&zone->z_recirc, zone_cache_smr(cache))) {
6758 		mag = zone_depot_pop_head_full(&zone->z_recirc, zone);
6759 		if (zone_cache_smr(cache)) {
6760 			zalloc_cached_reuse_smr(zone, cache, mag);
6761 		}
6762 		mag = zone_magazine_replace(cache, mag, false);
6763 		zone_depot_insert_head_empty(&zone->z_recirc, mag);
6764 	}
6765 
6766 	zone_recirc_unlock_nopreempt(zone);
6767 }
6768 
6769 __attribute__((noinline))
6770 static zone_cache_t
zalloc_cached_prime(zone_t zone,zone_cache_ops_t ops,zalloc_flags_t flags,zone_cache_t cache)6771 zalloc_cached_prime(
6772 	zone_t                  zone,
6773 	zone_cache_ops_t        ops,
6774 	zalloc_flags_t          flags,
6775 	zone_cache_t            cache)
6776 {
6777 	zone_magazine_t mag = NULL;
6778 	uint32_t depot_max;
6779 	smr_t smr;
6780 
6781 	depot_max = os_atomic_load(&zone->z_depot_size, relaxed);
6782 	if (depot_max) {
6783 		smr = zone_cache_smr(cache);
6784 
6785 		zone_depot_lock_nopreempt(cache);
6786 
6787 		if (!zone_depot_poll(&cache->zc_depot, smr)) {
6788 			zalloc_cached_depot_recirculate(zone, depot_max, cache,
6789 			    smr);
6790 		}
6791 
6792 		if (__probable(cache->zc_depot.zd_full)) {
6793 			mag = zone_depot_pop_head_full(&cache->zc_depot, NULL);
6794 			if (zone_cache_smr(cache)) {
6795 				zalloc_cached_reuse_smr(zone, cache, mag);
6796 			}
6797 			mag = zone_magazine_replace(cache, mag, false);
6798 			zone_depot_insert_head_empty(&cache->zc_depot, mag);
6799 		}
6800 
6801 		zone_depot_unlock_nopreempt(cache);
6802 	} else if (zone->z_recirc.zd_full) {
6803 		zalloc_cached_recirculate(zone, cache);
6804 	}
6805 
6806 	if (__probable(cache->zc_alloc_cur)) {
6807 		return cache;
6808 	}
6809 
6810 	if (ops == NULL) {
6811 		zalloc_cached_import(zone, flags, cache);
6812 		if (__probable(cache->zc_alloc_cur)) {
6813 			return cache;
6814 		}
6815 	}
6816 
6817 	return NULL;
6818 }
6819 
6820 __attribute__((always_inline))
6821 static inline zone_cache_t
zalloc_cached_get_pcpu_cache(zone_t zone,zone_cache_ops_t ops,int cpu,zalloc_flags_t flags)6822 zalloc_cached_get_pcpu_cache(
6823 	zone_t                  zone,
6824 	zone_cache_ops_t        ops,
6825 	int                     cpu,
6826 	zalloc_flags_t          flags)
6827 {
6828 	zone_cache_t cache = zpercpu_get_cpu(zone->z_pcpu_cache, cpu);
6829 
6830 	if (__probable(cache->zc_alloc_cur != 0)) {
6831 		return cache;
6832 	}
6833 
6834 	if (__probable(cache->zc_free_cur != 0 && !cache->zc_smr)) {
6835 		zone_cache_swap_magazines(cache);
6836 		return cache;
6837 	}
6838 
6839 	return zalloc_cached_prime(zone, ops, flags, cache);
6840 }
6841 
6842 
6843 /*!
6844  * @function zalloc_ext
6845  *
6846  * @brief
6847  * The core implementation of @c zalloc(), @c zalloc_flags(), @c zalloc_percpu().
6848  */
6849 struct kalloc_result
zalloc_ext(zone_t zone,zone_stats_t zstats,zalloc_flags_t flags)6850 zalloc_ext(zone_t zone, zone_stats_t zstats, zalloc_flags_t flags)
6851 {
6852 	/*
6853 	 * KASan uses zalloc() for fakestack, which can be called anywhere.
6854 	 * However, we make sure these calls can never block.
6855 	 */
6856 	assertf(startup_phase < STARTUP_SUB_EARLY_BOOT ||
6857 #if KASAN_FAKESTACK
6858 	    zone->z_kasan_fakestacks ||
6859 #endif /* KASAN_FAKESTACK */
6860 	    ml_get_interrupts_enabled() ||
6861 	    ml_is_quiescing() ||
6862 	    debug_mode_active(),
6863 	    "Calling {k,z}alloc from interrupt disabled context isn't allowed");
6864 
6865 	/*
6866 	 * Make sure Z_NOFAIL was not obviously misused
6867 	 */
6868 	if (flags & Z_NOFAIL) {
6869 		assert((flags & (Z_NOWAIT | Z_NOPAGEWAIT)) == 0);
6870 	}
6871 
6872 #if VM_TAG_SIZECLASSES
6873 	if (__improbable(zone->z_uses_tags)) {
6874 		vm_tag_t tag = zalloc_flags_get_tag(flags);
6875 
6876 		if (flags & Z_VM_TAG_BT_BIT) {
6877 			tag = vm_tag_bt() ?: tag;
6878 		}
6879 		if (tag != VM_KERN_MEMORY_NONE) {
6880 			tag = vm_tag_will_update_zone(tag,
6881 			    flags & (Z_WAITOK | Z_NOWAIT | Z_NOPAGEWAIT));
6882 		}
6883 		if (tag == VM_KERN_MEMORY_NONE) {
6884 			zone_security_flags_t zsflags = zone_security_config(zone);
6885 
6886 			if (zsflags.z_kheap_id == KHEAP_ID_DATA_BUFFERS) {
6887 				tag = VM_KERN_MEMORY_KALLOC_DATA;
6888 			} else if (zsflags.z_kheap_id == KHEAP_ID_KT_VAR ||
6889 			    zsflags.z_kalloc_type) {
6890 				tag = VM_KERN_MEMORY_KALLOC_TYPE;
6891 			} else {
6892 				tag = VM_KERN_MEMORY_KALLOC;
6893 			}
6894 		}
6895 		flags = Z_VM_TAG(flags & ~Z_VM_TAG_MASK, tag);
6896 	}
6897 #endif /* VM_TAG_SIZECLASSES */
6898 
6899 	disable_preemption();
6900 
6901 #if ZALLOC_ENABLE_ZERO_CHECK
6902 	if (zalloc_skip_zero_check()) {
6903 		flags |= Z_NOZZC;
6904 	}
6905 #endif
6906 
6907 	if (zone->z_pcpu_cache) {
6908 		zone_cache_t cache;
6909 		vm_offset_t index, addr, esize;
6910 		int cpu = cpu_number();
6911 
6912 		cache = zalloc_cached_get_pcpu_cache(zone, NULL, cpu, flags);
6913 		if (__probable(cache)) {
6914 			esize = zone_elem_inner_size(zone);
6915 			zpercpu_get_cpu(zstats, cpu)->zs_mem_allocated += esize;
6916 			index = --cache->zc_alloc_cur;
6917 			addr  = cache->zc_alloc_elems[index];
6918 			cache->zc_alloc_elems[index] = 0;
6919 			enable_preemption();
6920 			return zalloc_return(zone, addr, flags, esize);
6921 		}
6922 	}
6923 
6924 	__attribute__((musttail))
6925 	return zalloc_item(zone, zstats, flags);
6926 }
6927 
6928 __attribute__((always_inline))
6929 static inline zstack_t
zcache_alloc_stack_from_cpu(zone_id_t zid,zone_cache_t cache,zstack_t stack,uint32_t n,zone_cache_ops_t ops)6930 zcache_alloc_stack_from_cpu(
6931 	zone_id_t               zid,
6932 	zone_cache_t            cache,
6933 	zstack_t                stack,
6934 	uint32_t                n,
6935 	zone_cache_ops_t        ops)
6936 {
6937 	vm_offset_t *p;
6938 
6939 	n = MIN(n, cache->zc_alloc_cur);
6940 	p = cache->zc_alloc_elems + cache->zc_alloc_cur;
6941 	cache->zc_alloc_cur -= n;
6942 	stack.z_count += n;
6943 
6944 	do {
6945 		vm_offset_t e = *--p;
6946 
6947 		*p = 0;
6948 		if (ops) {
6949 			e = (vm_offset_t)ops->zc_op_mark_valid(zid, (void *)e);
6950 		} else {
6951 			e = __zcache_mark_valid(zone_by_id(zid), e, 0);
6952 		}
6953 		zstack_push_no_delta(&stack, (void *)e);
6954 	} while (--n > 0);
6955 
6956 	return stack;
6957 }
6958 
6959 __attribute__((noinline))
6960 static zstack_t
zcache_alloc_fail(zone_id_t zid,zstack_t stack,uint32_t count)6961 zcache_alloc_fail(zone_id_t zid, zstack_t stack, uint32_t count)
6962 {
6963 	zone_t zone = zone_by_id(zid);
6964 	zone_stats_t zstats = zone->z_stats;
6965 	int cpu;
6966 
6967 	count -= stack.z_count;
6968 
6969 	disable_preemption();
6970 	cpu = cpu_number();
6971 	zpercpu_get_cpu(zstats, cpu)->zs_mem_allocated -=
6972 	    count * zone_elem_inner_size(zone);
6973 	zpercpu_get_cpu(zstats, cpu)->zs_alloc_fail += 1;
6974 	enable_preemption();
6975 
6976 	return stack;
6977 }
6978 
6979 #define ZCACHE_ALLOC_RETRY  ((void *)-1)
6980 
6981 __attribute__((noinline))
6982 static void *
zcache_alloc_one(zone_id_t zid,zalloc_flags_t flags,zone_cache_ops_t ops)6983 zcache_alloc_one(
6984 	zone_id_t               zid,
6985 	zalloc_flags_t          flags,
6986 	zone_cache_ops_t        ops)
6987 {
6988 	zone_t zone = zone_by_id(zid);
6989 	void *o;
6990 
6991 	/*
6992 	 * First try to allocate in rudimentary zones without ever going into
6993 	 * __ZONE_EXHAUSTED_AND_WAITING_HARD__() by clearing Z_NOFAIL.
6994 	 */
6995 	enable_preemption();
6996 	o = ops->zc_op_alloc(zid, flags & ~Z_NOFAIL);
6997 	if (__probable(o)) {
6998 		os_atomic_inc(&zone->z_elems_avail, relaxed);
6999 	} else if (__probable(flags & Z_NOFAIL)) {
7000 		zone_cache_t cache;
7001 		vm_offset_t index;
7002 		int cpu;
7003 
7004 		zone_lock(zone);
7005 
7006 		cpu   = cpu_number();
7007 		cache = zalloc_cached_get_pcpu_cache(zone, ops, cpu, flags);
7008 		o     = ZCACHE_ALLOC_RETRY;
7009 		if (__probable(cache)) {
7010 			index = --cache->zc_alloc_cur;
7011 			o     = (void *)cache->zc_alloc_elems[index];
7012 			cache->zc_alloc_elems[index] = 0;
7013 			o = ops->zc_op_mark_valid(zid, o);
7014 		} else if (zone->z_elems_free == 0) {
7015 			__ZONE_EXHAUSTED_AND_WAITING_HARD__(zone);
7016 		}
7017 
7018 		zone_unlock(zone);
7019 	}
7020 
7021 	return o;
7022 }
7023 
7024 __attribute__((always_inline))
7025 static zstack_t
zcache_alloc_n_ext(zone_id_t zid,uint32_t count,zalloc_flags_t flags,zone_cache_ops_t ops)7026 zcache_alloc_n_ext(
7027 	zone_id_t               zid,
7028 	uint32_t                count,
7029 	zalloc_flags_t          flags,
7030 	zone_cache_ops_t        ops)
7031 {
7032 	zstack_t stack = { };
7033 	zone_cache_t cache;
7034 	zone_t zone;
7035 	int cpu;
7036 
7037 	disable_preemption();
7038 	cpu  = cpu_number();
7039 	zone = zone_by_id(zid);
7040 	zpercpu_get_cpu(zone->z_stats, cpu)->zs_mem_allocated +=
7041 	    count * zone_elem_inner_size(zone);
7042 
7043 	for (;;) {
7044 		cache = zalloc_cached_get_pcpu_cache(zone, ops, cpu, flags);
7045 		if (__probable(cache)) {
7046 			stack = zcache_alloc_stack_from_cpu(zid, cache, stack,
7047 			    count - stack.z_count, ops);
7048 			enable_preemption();
7049 		} else {
7050 			void *o;
7051 
7052 			if (ops) {
7053 				o = zcache_alloc_one(zid, flags, ops);
7054 			} else {
7055 				o = zalloc_item(zone, zone->z_stats, flags).addr;
7056 			}
7057 			if (__improbable(o == NULL)) {
7058 				return zcache_alloc_fail(zid, stack, count);
7059 			}
7060 			if (ops == NULL || o != ZCACHE_ALLOC_RETRY) {
7061 				zstack_push(&stack, o);
7062 			}
7063 		}
7064 
7065 		if (stack.z_count == count) {
7066 			break;
7067 		}
7068 
7069 		disable_preemption();
7070 		cpu = cpu_number();
7071 	}
7072 
7073 	ZALLOC_LOG(zone, stack.z_head, stack.z_count);
7074 
7075 	return stack;
7076 }
7077 
7078 zstack_t
zalloc_n(zone_id_t zid,uint32_t count,zalloc_flags_t flags)7079 zalloc_n(zone_id_t zid, uint32_t count, zalloc_flags_t flags)
7080 {
7081 	return zcache_alloc_n_ext(zid, count, flags, NULL);
7082 }
7083 
zstack_t(zcache_alloc_n)7084 zstack_t
7085 (zcache_alloc_n)(
7086 	zone_id_t               zid,
7087 	uint32_t                count,
7088 	zalloc_flags_t          flags,
7089 	zone_cache_ops_t        ops)
7090 {
7091 	__builtin_assume(ops != NULL);
7092 	return zcache_alloc_n_ext(zid, count, flags, ops);
7093 }
7094 
7095 __attribute__((always_inline))
7096 void *
zalloc(zone_t zov)7097 zalloc(zone_t zov)
7098 {
7099 	return zalloc_flags(zov, Z_WAITOK);
7100 }
7101 
7102 __attribute__((always_inline))
7103 void *
zalloc_noblock(zone_t zov)7104 zalloc_noblock(zone_t zov)
7105 {
7106 	return zalloc_flags(zov, Z_NOWAIT);
7107 }
7108 
7109 void *
7110 (zalloc_flags)(zone_t zov, zalloc_flags_t flags)
7111 {
7112 	zone_t zone = zov->z_self;
7113 	zone_stats_t zstats = zov->z_stats;
7114 
7115 	assert(zone > &zone_array[ZONE_ID__LAST_RO]);
7116 	assert(!zone->z_percpu && !zone->z_permanent);
7117 	return zalloc_ext(zone, zstats, flags).addr;
7118 }
7119 
7120 __attribute__((always_inline))
7121 void *
7122 (zalloc_id)(zone_id_t zid, zalloc_flags_t flags)
7123 {
7124 	return (zalloc_flags)(zone_by_id(zid), flags);
7125 }
7126 
7127 void *
7128 (zalloc_ro)(zone_id_t zid, zalloc_flags_t flags)
7129 {
7130 	assert(zid >= ZONE_ID__FIRST_RO && zid <= ZONE_ID__LAST_RO);
7131 	zone_t zone = zone_by_id(zid);
7132 	zone_stats_t zstats = zone->z_stats;
7133 	struct kalloc_result kr;
7134 
7135 	kr = zalloc_ext(zone, zstats, flags);
7136 #if ZSECURITY_CONFIG(READ_ONLY)
7137 	assert(zone_security_array[zid].z_submap_idx == Z_SUBMAP_IDX_READ_ONLY);
7138 	if (kr.addr) {
7139 		zone_require_ro(zid, kr.size, kr.addr);
7140 	}
7141 #endif
7142 	return kr.addr;
7143 }
7144 
7145 #if ZSECURITY_CONFIG(READ_ONLY)
7146 
7147 __attribute__((always_inline))
7148 static bool
from_current_stack(vm_offset_t addr,vm_size_t size)7149 from_current_stack(vm_offset_t addr, vm_size_t size)
7150 {
7151 	vm_offset_t start = (vm_offset_t)__builtin_frame_address(0);
7152 	vm_offset_t end = (start + kernel_stack_size - 1) & -kernel_stack_size;
7153 
7154 	addr = vm_memtag_canonicalize_address(addr);
7155 
7156 	return (addr >= start) && (addr + size < end);
7157 }
7158 
7159 /*
7160  * Check if an address is from const memory i.e TEXT or DATA CONST segements
7161  * or the SECURITY_READ_ONLY_LATE section.
7162  */
7163 #if defined(KERNEL_INTEGRITY_KTRR) || defined(KERNEL_INTEGRITY_CTRR)
7164 __attribute__((always_inline))
7165 static bool
from_const_memory(const vm_offset_t addr,vm_size_t size)7166 from_const_memory(const vm_offset_t addr, vm_size_t size)
7167 {
7168 	return rorgn_contains(addr, size, true);
7169 }
7170 #else /* defined(KERNEL_INTEGRITY_KTRR) || defined(KERNEL_INTEGRITY_CTRR) */
7171 __attribute__((always_inline))
7172 static bool
from_const_memory(const vm_offset_t addr,vm_size_t size)7173 from_const_memory(const vm_offset_t addr, vm_size_t size)
7174 {
7175 #pragma unused(addr, size)
7176 	return true;
7177 }
7178 #endif /* defined(KERNEL_INTEGRITY_KTRR) || defined(KERNEL_INTEGRITY_CTRR) */
7179 
7180 __abortlike
7181 static void
zalloc_ro_mut_validation_panic(zone_id_t zid,void * elem,const vm_offset_t src,vm_size_t src_size)7182 zalloc_ro_mut_validation_panic(zone_id_t zid, void *elem,
7183     const vm_offset_t src, vm_size_t src_size)
7184 {
7185 	vm_offset_t stack_start = (vm_offset_t)__builtin_frame_address(0);
7186 	vm_offset_t stack_end = (stack_start + kernel_stack_size - 1) & -kernel_stack_size;
7187 #if defined(KERNEL_INTEGRITY_KTRR) || defined(KERNEL_INTEGRITY_CTRR)
7188 	extern vm_offset_t rorgn_begin;
7189 	extern vm_offset_t rorgn_end;
7190 #else
7191 	vm_offset_t const rorgn_begin = 0;
7192 	vm_offset_t const rorgn_end = 0;
7193 #endif
7194 
7195 	if (from_ro_map(src, src_size)) {
7196 		zone_t src_zone = &zone_array[zone_index_from_ptr((void *)src)];
7197 		zone_t dst_zone = &zone_array[zid];
7198 		panic("zalloc_ro_mut failed: source (%p) not from same zone as dst (%p)"
7199 		    " (expected: %s, actual: %s", (void *)src, elem, src_zone->z_name,
7200 		    dst_zone->z_name);
7201 	}
7202 
7203 	panic("zalloc_ro_mut failed: source (%p, phys %p) not from RO zone map (%p - %p), "
7204 	    "current stack (%p - %p) or const memory (phys %p - %p)",
7205 	    (void *)src, (void*)kvtophys(src),
7206 	    (void *)zone_info.zi_ro_range.min_address,
7207 	    (void *)zone_info.zi_ro_range.max_address,
7208 	    (void *)stack_start, (void *)stack_end,
7209 	    (void *)rorgn_begin, (void *)rorgn_end);
7210 }
7211 
7212 __attribute__((always_inline))
7213 static void
zalloc_ro_mut_validate_src(zone_id_t zid,void * elem,const vm_offset_t src,vm_size_t src_size)7214 zalloc_ro_mut_validate_src(zone_id_t zid, void *elem,
7215     const vm_offset_t src, vm_size_t src_size)
7216 {
7217 	if (from_current_stack(src, src_size) ||
7218 	    (from_ro_map(src, src_size) &&
7219 	    zid == zone_index_from_ptr((void *)src)) ||
7220 	    from_const_memory(src, src_size)) {
7221 		return;
7222 	}
7223 	zalloc_ro_mut_validation_panic(zid, elem, src, src_size);
7224 }
7225 
7226 #endif /* ZSECURITY_CONFIG(READ_ONLY) */
7227 
7228 __attribute__((noinline))
7229 void
zalloc_ro_mut(zone_id_t zid,void * elem,vm_offset_t offset,const void * new_data,vm_size_t new_data_size)7230 zalloc_ro_mut(zone_id_t zid, void *elem, vm_offset_t offset,
7231     const void *new_data, vm_size_t new_data_size)
7232 {
7233 	assert(zid >= ZONE_ID__FIRST_RO && zid <= ZONE_ID__LAST_RO);
7234 
7235 #if ZSECURITY_CONFIG(READ_ONLY)
7236 	bool skip_src_check = false;
7237 
7238 	/*
7239 	 * The OSEntitlements RO-zone is a little differently treated. For more
7240 	 * information: rdar://100518485.
7241 	 */
7242 	if (zid == ZONE_ID_AMFI_OSENTITLEMENTS) {
7243 		code_signing_config_t cs_config = 0;
7244 
7245 		code_signing_configuration(NULL, &cs_config);
7246 		if (cs_config & CS_CONFIG_CSM_ENABLED) {
7247 			skip_src_check = true;
7248 		}
7249 	}
7250 
7251 	if (skip_src_check == false) {
7252 		zalloc_ro_mut_validate_src(zid, elem, (vm_offset_t)new_data,
7253 		    new_data_size);
7254 	}
7255 	pmap_ro_zone_memcpy(zid, (vm_offset_t) elem, offset,
7256 	    (vm_offset_t) new_data, new_data_size);
7257 #else
7258 	(void)zid;
7259 	memcpy((void *)((uintptr_t)elem + offset), new_data, new_data_size);
7260 #endif
7261 }
7262 
7263 __attribute__((noinline))
7264 uint64_t
zalloc_ro_mut_atomic(zone_id_t zid,void * elem,vm_offset_t offset,zro_atomic_op_t op,uint64_t value)7265 zalloc_ro_mut_atomic(zone_id_t zid, void *elem, vm_offset_t offset,
7266     zro_atomic_op_t op, uint64_t value)
7267 {
7268 	assert(zid >= ZONE_ID__FIRST_RO && zid <= ZONE_ID__LAST_RO);
7269 
7270 #if ZSECURITY_CONFIG(READ_ONLY)
7271 	value = pmap_ro_zone_atomic_op(zid, (vm_offset_t)elem, offset, op, value);
7272 #else
7273 	(void)zid;
7274 	value = __zalloc_ro_mut_atomic((vm_offset_t)elem + offset, op, value);
7275 #endif
7276 	return value;
7277 }
7278 
7279 void
zalloc_ro_clear(zone_id_t zid,void * elem,vm_offset_t offset,vm_size_t size)7280 zalloc_ro_clear(zone_id_t zid, void *elem, vm_offset_t offset, vm_size_t size)
7281 {
7282 	assert(zid >= ZONE_ID__FIRST_RO && zid <= ZONE_ID__LAST_RO);
7283 #if ZSECURITY_CONFIG(READ_ONLY)
7284 	pmap_ro_zone_bzero(zid, (vm_offset_t)elem, offset, size);
7285 #else
7286 	(void)zid;
7287 	bzero((void *)((uintptr_t)elem + offset), size);
7288 #endif
7289 }
7290 
7291 /*
7292  * This function will run in the PPL and needs to be robust
7293  * against an attacker with arbitrary kernel write.
7294  */
7295 
7296 #if ZSECURITY_CONFIG(READ_ONLY)
7297 
7298 __abortlike
7299 static void
zone_id_require_ro_panic(zone_id_t zid,void * addr)7300 zone_id_require_ro_panic(zone_id_t zid, void *addr)
7301 {
7302 	struct zone_size_params p = zone_ro_size_params[zid];
7303 	vm_offset_t elem = (vm_offset_t)addr;
7304 	uint32_t zindex;
7305 	zone_t other;
7306 	zone_t zone = &zone_array[zid];
7307 
7308 	if (!from_ro_map(addr, 1)) {
7309 		panic("zone_require_ro failed: address not in a ro zone (addr: %p)", addr);
7310 	}
7311 
7312 	if (!Z_FAST_ALIGNED(PAGE_SIZE - (elem & PAGE_MASK), p.z_align_magic)) {
7313 		panic("zone_require_ro failed: element improperly aligned (addr: %p)", addr);
7314 	}
7315 
7316 	zindex = zone_index_from_ptr(addr);
7317 	other = &zone_array[zindex];
7318 	if (zindex >= os_atomic_load(&num_zones, relaxed) || !other->z_self) {
7319 		panic("zone_require_ro failed: invalid zone index %d "
7320 		    "(addr: %p, expected: %s%s)", zindex,
7321 		    addr, zone_heap_name(zone), zone->z_name);
7322 	} else {
7323 		panic("zone_require_ro failed: address in unexpected zone id %d (%s%s) "
7324 		    "(addr: %p, expected: %s%s)",
7325 		    zindex, zone_heap_name(other), other->z_name,
7326 		    addr, zone_heap_name(zone), zone->z_name);
7327 	}
7328 }
7329 
7330 #endif /* ZSECURITY_CONFIG(READ_ONLY) */
7331 
7332 __attribute__((always_inline))
7333 void
zone_require_ro(zone_id_t zid,vm_size_t elem_size __unused,void * addr)7334 zone_require_ro(zone_id_t zid, vm_size_t elem_size __unused, void *addr)
7335 {
7336 #if ZSECURITY_CONFIG(READ_ONLY)
7337 	struct zone_size_params p = zone_ro_size_params[zid];
7338 	vm_offset_t elem = (vm_offset_t)addr;
7339 
7340 	if (!from_ro_map(addr, 1) ||
7341 	    !Z_FAST_ALIGNED(PAGE_SIZE - (elem & PAGE_MASK), p.z_align_magic) ||
7342 	    zid != zone_meta_from_addr(elem)->zm_index) {
7343 		zone_id_require_ro_panic(zid, addr);
7344 	}
7345 #else
7346 #pragma unused(zid, addr)
7347 #endif
7348 }
7349 
7350 void *
7351 (zalloc_percpu)(union zone_or_view zov, zalloc_flags_t flags)
7352 {
7353 	zone_t zone = zov.zov_view->zv_zone;
7354 	zone_stats_t zstats = zov.zov_view->zv_stats;
7355 
7356 	assert(zone > &zone_array[ZONE_ID__LAST_RO]);
7357 	assert(zone->z_percpu);
7358 	flags |= Z_PCPU;
7359 	return (void *)__zpcpu_mangle(zalloc_ext(zone, zstats, flags).addr);
7360 }
7361 
7362 static void *
_zalloc_permanent(zone_t zone,vm_size_t size,vm_offset_t mask)7363 _zalloc_permanent(zone_t zone, vm_size_t size, vm_offset_t mask)
7364 {
7365 	struct zone_page_metadata *page_meta;
7366 	vm_offset_t offs, addr;
7367 	zone_pva_t pva;
7368 
7369 	assert(ml_get_interrupts_enabled() ||
7370 	    ml_is_quiescing() ||
7371 	    debug_mode_active() ||
7372 	    startup_phase < STARTUP_SUB_EARLY_BOOT);
7373 
7374 	size = (size + mask) & ~mask;
7375 	assert(size <= PAGE_SIZE);
7376 
7377 	zone_lock(zone);
7378 	assert(zone->z_self == zone);
7379 
7380 	for (;;) {
7381 		pva = zone->z_pageq_partial;
7382 		while (!zone_pva_is_null(pva)) {
7383 			page_meta = zone_pva_to_meta(pva);
7384 			if (page_meta->zm_bump + size <= PAGE_SIZE) {
7385 				goto found;
7386 			}
7387 			pva = page_meta->zm_page_next;
7388 		}
7389 
7390 		zone_expand_locked(zone, Z_WAITOK);
7391 	}
7392 
7393 found:
7394 	offs = (uint16_t)((page_meta->zm_bump + mask) & ~mask);
7395 	page_meta->zm_bump = (uint16_t)(offs + size);
7396 	page_meta->zm_alloc_size += size;
7397 	zone->z_elems_free -= size;
7398 	zpercpu_get(zone->z_stats)->zs_mem_allocated += size;
7399 
7400 	if (page_meta->zm_alloc_size >= PAGE_SIZE - sizeof(vm_offset_t)) {
7401 		zone_meta_requeue(zone, &zone->z_pageq_full, page_meta);
7402 	}
7403 
7404 	zone_unlock(zone);
7405 
7406 	if (zone->z_tbi_tag) {
7407 		addr = vm_memtag_fixup_ptr(offs + zone_pva_to_addr(pva));
7408 	} else {
7409 		addr = offs + zone_pva_to_addr(pva);
7410 	}
7411 
7412 	DTRACE_VM2(zalloc, zone_t, zone, void*, addr);
7413 	return (void *)addr;
7414 }
7415 
7416 static void *
_zalloc_permanent_large(size_t size,vm_offset_t mask,vm_tag_t tag)7417 _zalloc_permanent_large(size_t size, vm_offset_t mask, vm_tag_t tag)
7418 {
7419 	vm_offset_t addr;
7420 
7421 	kernel_memory_allocate(kernel_map, &addr, size, mask,
7422 	    KMA_NOFAIL | KMA_KOBJECT | KMA_PERMANENT | KMA_ZERO, tag);
7423 
7424 	return (void *)addr;
7425 }
7426 
7427 void *
zalloc_permanent_tag(vm_size_t size,vm_offset_t mask,vm_tag_t tag)7428 zalloc_permanent_tag(vm_size_t size, vm_offset_t mask, vm_tag_t tag)
7429 {
7430 	if (size <= PAGE_SIZE) {
7431 		zone_t zone = &zone_array[ZONE_ID_PERMANENT];
7432 		return _zalloc_permanent(zone, size, mask);
7433 	}
7434 	return _zalloc_permanent_large(size, mask, tag);
7435 }
7436 
7437 void *
zalloc_percpu_permanent(vm_size_t size,vm_offset_t mask)7438 zalloc_percpu_permanent(vm_size_t size, vm_offset_t mask)
7439 {
7440 	zone_t zone = &zone_array[ZONE_ID_PERCPU_PERMANENT];
7441 	return (void *)__zpcpu_mangle(_zalloc_permanent(zone, size, mask));
7442 }
7443 
7444 /*! @} */
7445 #endif /* !ZALLOC_TEST */
7446 #pragma mark zone GC / trimming
7447 #if !ZALLOC_TEST
7448 
7449 static thread_call_data_t zone_trim_callout;
7450 EVENT_DEFINE(ZONE_EXHAUSTED);
7451 
7452 static void
zone_reclaim_chunk(zone_t z,struct zone_page_metadata * meta,uint32_t free_count)7453 zone_reclaim_chunk(
7454 	zone_t                  z,
7455 	struct zone_page_metadata *meta,
7456 	uint32_t                free_count)
7457 {
7458 	vm_address_t page_addr;
7459 	vm_size_t    size_to_free;
7460 	uint32_t     bitmap_ref;
7461 	uint32_t     page_count;
7462 	zone_security_flags_t zsflags = zone_security_config(z);
7463 	bool         sequester = !z->z_destroyed;
7464 	bool         oob_guard = false;
7465 
7466 	if (zone_submap_is_sequestered(zsflags)) {
7467 		/*
7468 		 * If the entire map is sequestered, we can't return the VA.
7469 		 * It stays pinned to the zone forever.
7470 		 */
7471 		sequester = true;
7472 	}
7473 
7474 	zone_meta_queue_pop(z, &z->z_pageq_empty);
7475 
7476 	page_addr  = zone_meta_to_addr(meta);
7477 	page_count = meta->zm_chunk_len;
7478 	oob_guard  = meta->zm_guarded;
7479 
7480 	if (meta->zm_alloc_size) {
7481 		zone_metadata_corruption(z, meta, "alloc_size");
7482 	}
7483 	if (z->z_percpu) {
7484 		if (page_count != 1) {
7485 			zone_metadata_corruption(z, meta, "page_count");
7486 		}
7487 		size_to_free = ptoa(z->z_chunk_pages);
7488 		zone_remove_wired_pages(z, z->z_chunk_pages);
7489 	} else {
7490 		if (page_count > z->z_chunk_pages) {
7491 			zone_metadata_corruption(z, meta, "page_count");
7492 		}
7493 		if (page_count < z->z_chunk_pages) {
7494 			/* Dequeue non populated VA from z_pageq_va */
7495 			zone_meta_remqueue(z, meta + page_count);
7496 		}
7497 		size_to_free = ptoa(page_count);
7498 		zone_remove_wired_pages(z, page_count);
7499 	}
7500 
7501 	zone_counter_sub(z, z_elems_free, free_count);
7502 	zone_counter_sub(z, z_elems_avail, free_count);
7503 	zone_counter_sub(z, z_wired_empty, page_count);
7504 	zone_counter_sub(z, z_wired_cur, page_count);
7505 
7506 	if (z->z_pcpu_cache == NULL) {
7507 		if (z->z_elems_free_min < free_count) {
7508 			z->z_elems_free_min = 0;
7509 		} else {
7510 			z->z_elems_free_min -= free_count;
7511 		}
7512 	}
7513 	if (z->z_elems_free_wma < free_count) {
7514 		z->z_elems_free_wma = 0;
7515 	} else {
7516 		z->z_elems_free_wma -= free_count;
7517 	}
7518 
7519 	bitmap_ref = 0;
7520 	if (sequester) {
7521 		if (meta->zm_inline_bitmap) {
7522 			for (int i = 0; i < meta->zm_chunk_len; i++) {
7523 				meta[i].zm_bitmap = 0;
7524 			}
7525 		} else {
7526 			bitmap_ref = meta->zm_bitmap;
7527 			meta->zm_bitmap = 0;
7528 		}
7529 		meta->zm_chunk_len = 0;
7530 	} else {
7531 		if (!meta->zm_inline_bitmap) {
7532 			bitmap_ref = meta->zm_bitmap;
7533 		}
7534 		zone_counter_sub(z, z_va_cur, z->z_percpu ? 1 : z->z_chunk_pages);
7535 		bzero(meta, sizeof(*meta) * (z->z_chunk_pages + oob_guard));
7536 	}
7537 
7538 #if CONFIG_ZLEAKS
7539 	if (__improbable(zleak_should_disable_for_zone(z) &&
7540 	    startup_phase >= STARTUP_SUB_THREAD_CALL)) {
7541 		thread_call_enter(&zone_leaks_callout);
7542 	}
7543 #endif /* CONFIG_ZLEAKS */
7544 
7545 	zone_unlock(z);
7546 
7547 	if (bitmap_ref) {
7548 		zone_bits_free(bitmap_ref);
7549 	}
7550 
7551 	/* Free the pages for metadata and account for them */
7552 #if KASAN_CLASSIC
7553 	if (z->z_percpu) {
7554 		for (uint32_t i = 0; i < z->z_chunk_pages; i++) {
7555 			kasan_zmem_remove(page_addr + ptoa(i), PAGE_SIZE,
7556 			    zone_elem_outer_size(z),
7557 			    zone_elem_outer_offs(z),
7558 			    zone_elem_redzone(z));
7559 		}
7560 	} else {
7561 		kasan_zmem_remove(page_addr, size_to_free,
7562 		    zone_elem_outer_size(z),
7563 		    zone_elem_outer_offs(z),
7564 		    zone_elem_redzone(z));
7565 	}
7566 #endif /* KASAN_CLASSIC */
7567 
7568 	if (sequester) {
7569 		kma_flags_t flags = zone_kma_flags(z, zsflags, 0) | KMA_KOBJECT;
7570 		kernel_memory_depopulate(page_addr, size_to_free,
7571 		    flags, VM_KERN_MEMORY_ZONE);
7572 	} else {
7573 		assert(zsflags.z_submap_idx != Z_SUBMAP_IDX_VM);
7574 		kmem_free(zone_submap(zsflags), page_addr,
7575 		    ptoa(z->z_chunk_pages + oob_guard));
7576 		if (oob_guard) {
7577 			os_atomic_dec(&zone_guard_pages, relaxed);
7578 		}
7579 	}
7580 
7581 	thread_yield_to_preemption();
7582 
7583 	zone_lock(z);
7584 
7585 	if (sequester) {
7586 		zone_meta_queue_push(z, &z->z_pageq_va, meta);
7587 	}
7588 }
7589 
7590 static void
zone_reclaim_elements(zone_t z,uint16_t n,vm_offset_t * elems)7591 zone_reclaim_elements(zone_t z, uint16_t n, vm_offset_t *elems)
7592 {
7593 	z_debug_assert(n <= zc_mag_size());
7594 
7595 	for (uint16_t i = 0; i < n; i++) {
7596 		vm_offset_t addr = elems[i];
7597 		elems[i] = 0;
7598 		zfree_drop(z, addr);
7599 	}
7600 
7601 	z->z_elems_free += n;
7602 }
7603 
7604 static void
zcache_reclaim_elements(zone_id_t zid,uint16_t n,vm_offset_t * elems)7605 zcache_reclaim_elements(zone_id_t zid, uint16_t n, vm_offset_t *elems)
7606 {
7607 	z_debug_assert(n <= zc_mag_size());
7608 	zone_cache_ops_t ops = zcache_ops[zid];
7609 
7610 	for (uint16_t i = 0; i < n; i++) {
7611 		vm_offset_t addr = elems[i];
7612 		elems[i] = 0;
7613 		addr = (vm_offset_t)ops->zc_op_mark_valid(zid, (void *)addr);
7614 		ops->zc_op_free(zid, (void *)addr);
7615 	}
7616 
7617 	os_atomic_sub(&zone_by_id(zid)->z_elems_avail, n, relaxed);
7618 }
7619 
7620 static void
zone_depot_trim(zone_t z,uint32_t target,struct zone_depot * zd)7621 zone_depot_trim(zone_t z, uint32_t target, struct zone_depot *zd)
7622 {
7623 	zpercpu_foreach(zc, z->z_pcpu_cache) {
7624 		zone_depot_lock(zc);
7625 
7626 		if (zc->zc_depot.zd_full > (target + 1) / 2) {
7627 			uint32_t n = zc->zc_depot.zd_full - (target + 1) / 2;
7628 			zone_depot_move_full(zd, &zc->zc_depot, n, NULL);
7629 		}
7630 
7631 		if (zc->zc_depot.zd_empty > target / 2) {
7632 			uint32_t n = zc->zc_depot.zd_empty - target / 2;
7633 			zone_depot_move_empty(zd, &zc->zc_depot, n, NULL);
7634 		}
7635 
7636 		zone_depot_unlock(zc);
7637 	}
7638 }
7639 
7640 __enum_decl(zone_reclaim_mode_t, uint32_t, {
7641 	ZONE_RECLAIM_TRIM,
7642 	ZONE_RECLAIM_DRAIN,
7643 	ZONE_RECLAIM_DESTROY,
7644 });
7645 
7646 static void
zone_reclaim_pcpu(zone_t z,zone_reclaim_mode_t mode,struct zone_depot * zd)7647 zone_reclaim_pcpu(zone_t z, zone_reclaim_mode_t mode, struct zone_depot *zd)
7648 {
7649 	uint32_t depot_max = 0;
7650 	bool cleanup = mode != ZONE_RECLAIM_TRIM;
7651 
7652 	if (z->z_depot_cleanup) {
7653 		z->z_depot_cleanup = false;
7654 		depot_max = z->z_depot_size;
7655 		cleanup = true;
7656 	}
7657 
7658 	if (cleanup) {
7659 		zone_depot_trim(z, depot_max, zd);
7660 	}
7661 
7662 	if (mode == ZONE_RECLAIM_DESTROY) {
7663 		zpercpu_foreach(zc, z->z_pcpu_cache) {
7664 			zone_reclaim_elements(z, zc->zc_alloc_cur,
7665 			    zc->zc_alloc_elems);
7666 			zone_reclaim_elements(z, zc->zc_free_cur,
7667 			    zc->zc_free_elems);
7668 			zc->zc_alloc_cur = zc->zc_free_cur = 0;
7669 		}
7670 
7671 		z->z_recirc_empty_min = 0;
7672 		z->z_recirc_empty_wma = 0;
7673 		z->z_recirc_full_min = 0;
7674 		z->z_recirc_full_wma = 0;
7675 		z->z_recirc_cont_cur = 0;
7676 		z->z_recirc_cont_wma = 0;
7677 	}
7678 }
7679 
7680 static void
zone_reclaim_recirc_drain(zone_t z,struct zone_depot * zd)7681 zone_reclaim_recirc_drain(zone_t z, struct zone_depot *zd)
7682 {
7683 	assert(zd->zd_empty == 0);
7684 	assert(zd->zd_full == 0);
7685 
7686 	zone_recirc_lock_nopreempt(z);
7687 
7688 	*zd = z->z_recirc;
7689 	if (zd->zd_full == 0) {
7690 		zd->zd_tail = &zd->zd_head;
7691 	}
7692 	zone_depot_init(&z->z_recirc);
7693 	z->z_recirc_empty_min = 0;
7694 	z->z_recirc_empty_wma = 0;
7695 	z->z_recirc_full_min = 0;
7696 	z->z_recirc_full_wma = 0;
7697 
7698 	zone_recirc_unlock_nopreempt(z);
7699 }
7700 
7701 static void
zone_reclaim_recirc_trim(zone_t z,struct zone_depot * zd)7702 zone_reclaim_recirc_trim(zone_t z, struct zone_depot *zd)
7703 {
7704 	for (;;) {
7705 		uint32_t budget = zc_free_batch_size();
7706 		uint32_t count;
7707 		bool done = true;
7708 
7709 		zone_recirc_lock_nopreempt(z);
7710 		count = MIN(z->z_recirc_empty_wma / Z_WMA_UNIT,
7711 		    z->z_recirc_empty_min);
7712 		assert(count <= z->z_recirc.zd_empty);
7713 
7714 		if (count > budget) {
7715 			count = budget;
7716 			done  = false;
7717 		}
7718 		if (count) {
7719 			budget -= count;
7720 			zone_depot_move_empty(zd, &z->z_recirc, count, NULL);
7721 			z->z_recirc_empty_min -= count;
7722 			z->z_recirc_empty_wma -= count * Z_WMA_UNIT;
7723 		}
7724 
7725 		count = MIN(z->z_recirc_full_wma / Z_WMA_UNIT,
7726 		    z->z_recirc_full_min);
7727 		assert(count <= z->z_recirc.zd_full);
7728 
7729 		if (count > budget) {
7730 			count = budget;
7731 			done  = false;
7732 		}
7733 		if (count) {
7734 			zone_depot_move_full(zd, &z->z_recirc, count, NULL);
7735 			z->z_recirc_full_min -= count;
7736 			z->z_recirc_full_wma -= count * Z_WMA_UNIT;
7737 		}
7738 
7739 		zone_recirc_unlock_nopreempt(z);
7740 
7741 		if (done) {
7742 			return;
7743 		}
7744 
7745 		/*
7746 		 * If the number of magazines to reclaim is too large,
7747 		 * we might be keeping preemption disabled for too long.
7748 		 *
7749 		 * Drop and retake the lock to allow for preemption to occur.
7750 		 */
7751 		zone_unlock(z);
7752 		zone_lock(z);
7753 	}
7754 }
7755 
7756 /*!
7757  * @function zone_reclaim
7758  *
7759  * @brief
7760  * Drains or trim the zone.
7761  *
7762  * @discussion
7763  * Draining the zone will free it from all its elements.
7764  *
7765  * Trimming the zone tries to respect the working set size, and avoids draining
7766  * the depot when it's not necessary.
7767  *
7768  * @param z             The zone to reclaim from
7769  * @param mode          The purpose of this reclaim.
7770  */
7771 static void
zone_reclaim(zone_t z,zone_reclaim_mode_t mode)7772 zone_reclaim(zone_t z, zone_reclaim_mode_t mode)
7773 {
7774 	struct zone_depot zd;
7775 
7776 	zone_depot_init(&zd);
7777 
7778 	zone_lock(z);
7779 
7780 	if (mode == ZONE_RECLAIM_DESTROY) {
7781 		if (!z->z_destructible || z->z_elems_rsv) {
7782 			panic("zdestroy: Zone %s%s isn't destructible",
7783 			    zone_heap_name(z), z->z_name);
7784 		}
7785 
7786 		if (!z->z_self || z->z_expander ||
7787 		    z->z_async_refilling || z->z_expanding_wait) {
7788 			panic("zdestroy: Zone %s%s in an invalid state for destruction",
7789 			    zone_heap_name(z), z->z_name);
7790 		}
7791 
7792 #if !KASAN_CLASSIC
7793 		/*
7794 		 * Unset the valid bit. We'll hit an assert failure on further
7795 		 * operations on this zone, until zinit() is called again.
7796 		 *
7797 		 * Leave the zone valid for KASan as we will see zfree's on
7798 		 * quarantined free elements even after the zone is destroyed.
7799 		 */
7800 		z->z_self = NULL;
7801 #endif
7802 		z->z_destroyed = true;
7803 	} else if (z->z_destroyed) {
7804 		return zone_unlock(z);
7805 	} else if (zone_count_free(z) <= z->z_elems_rsv) {
7806 		/* If the zone is under its reserve level, leave it alone. */
7807 		return zone_unlock(z);
7808 	}
7809 
7810 	if (z->z_pcpu_cache) {
7811 		zone_magazine_t mag;
7812 		uint32_t freed = 0;
7813 
7814 		/*
7815 		 * This is all done with the zone lock held on purpose.
7816 		 * The work here is O(ncpu), which should still be short.
7817 		 *
7818 		 * We need to keep the lock held until we have reclaimed
7819 		 * at least a few magazines, otherwise if the zone has no
7820 		 * free elements outside of the depot, a thread performing
7821 		 * a concurrent allocatiuon could try to grow the zone
7822 		 * while we're trying to drain it.
7823 		 */
7824 		if (mode == ZONE_RECLAIM_TRIM) {
7825 			zone_reclaim_recirc_trim(z, &zd);
7826 		} else {
7827 			zone_reclaim_recirc_drain(z, &zd);
7828 		}
7829 		zone_reclaim_pcpu(z, mode, &zd);
7830 
7831 		if (z->z_chunk_elems) {
7832 			zone_cache_t cache = zpercpu_get_cpu(z->z_pcpu_cache, 0);
7833 			smr_t smr = zone_cache_smr(cache);
7834 
7835 			while (zd.zd_full) {
7836 				mag = zone_depot_pop_head_full(&zd, NULL);
7837 				if (smr) {
7838 					smr_wait(smr, mag->zm_seq);
7839 					zalloc_cached_reuse_smr(z, cache, mag);
7840 					freed += zc_mag_size();
7841 				}
7842 				zone_reclaim_elements(z, zc_mag_size(),
7843 				    mag->zm_elems);
7844 				zone_depot_insert_head_empty(&zd, mag);
7845 
7846 				freed += zc_mag_size();
7847 				if (freed >= zc_free_batch_size()) {
7848 					zone_unlock(z);
7849 					zone_magazine_free_list(&zd);
7850 					thread_yield_to_preemption();
7851 					zone_lock(z);
7852 					freed = 0;
7853 				}
7854 			}
7855 		} else {
7856 			zone_id_t zid = zone_index(z);
7857 
7858 			zone_unlock(z);
7859 
7860 			assert(zid <= ZONE_ID__FIRST_DYNAMIC && zcache_ops[zid]);
7861 
7862 			while (zd.zd_full) {
7863 				mag = zone_depot_pop_head_full(&zd, NULL);
7864 				zcache_reclaim_elements(zid, zc_mag_size(),
7865 				    mag->zm_elems);
7866 				zone_magazine_free(mag);
7867 			}
7868 
7869 			goto cleanup;
7870 		}
7871 	}
7872 
7873 	while (!zone_pva_is_null(z->z_pageq_empty)) {
7874 		struct zone_page_metadata *meta;
7875 		uint32_t count, limit = z->z_elems_rsv * 5 / 4;
7876 
7877 		if (mode == ZONE_RECLAIM_TRIM && z->z_pcpu_cache == NULL) {
7878 			limit = MAX(limit, z->z_elems_free -
7879 			    MIN(z->z_elems_free_min, z->z_elems_free_wma));
7880 		}
7881 
7882 		meta  = zone_pva_to_meta(z->z_pageq_empty);
7883 		count = (uint32_t)ptoa(meta->zm_chunk_len) / zone_elem_outer_size(z);
7884 
7885 		if (zone_count_free(z) - count < limit) {
7886 			break;
7887 		}
7888 
7889 		zone_reclaim_chunk(z, meta, count);
7890 	}
7891 
7892 	zone_unlock(z);
7893 
7894 cleanup:
7895 	zone_magazine_free_list(&zd);
7896 }
7897 
7898 void
zone_drain(zone_t zone)7899 zone_drain(zone_t zone)
7900 {
7901 	current_thread()->options |= TH_OPT_ZONE_PRIV;
7902 	lck_mtx_lock(&zone_gc_lock);
7903 	zone_reclaim(zone, ZONE_RECLAIM_DRAIN);
7904 	lck_mtx_unlock(&zone_gc_lock);
7905 	current_thread()->options &= ~TH_OPT_ZONE_PRIV;
7906 }
7907 
7908 void
zcache_drain(zone_id_t zid)7909 zcache_drain(zone_id_t zid)
7910 {
7911 	zone_drain(zone_by_id(zid));
7912 }
7913 
7914 static void
zone_reclaim_all(zone_reclaim_mode_t mode)7915 zone_reclaim_all(zone_reclaim_mode_t mode)
7916 {
7917 	/*
7918 	 * Start with zcaches, so that they flow into the regular zones.
7919 	 *
7920 	 * Then the zones with VA sequester since depopulating
7921 	 * pages will not need to allocate vm map entries for holes,
7922 	 * which will give memory back to the system faster.
7923 	 */
7924 	for (zone_id_t zid = ZONE_ID__LAST_RO + 1; zid < ZONE_ID__FIRST_DYNAMIC; zid++) {
7925 		zone_t z = zone_by_id(zid);
7926 
7927 		if (z->z_self && z->z_chunk_elems == 0) {
7928 			zone_reclaim(z, mode);
7929 		}
7930 	}
7931 	zone_index_foreach(zid) {
7932 		zone_t z = zone_by_id(zid);
7933 
7934 		if (z == zc_magazine_zone || z->z_chunk_elems == 0) {
7935 			continue;
7936 		}
7937 		if (zone_submap_is_sequestered(zone_security_array[zid]) &&
7938 		    z->collectable) {
7939 			zone_reclaim(z, mode);
7940 		}
7941 	}
7942 
7943 	zone_index_foreach(zid) {
7944 		zone_t z = zone_by_id(zid);
7945 
7946 		if (z == zc_magazine_zone || z->z_chunk_elems == 0) {
7947 			continue;
7948 		}
7949 		if (!zone_submap_is_sequestered(zone_security_array[zid]) &&
7950 		    z->collectable) {
7951 			zone_reclaim(z, mode);
7952 		}
7953 	}
7954 
7955 	zone_reclaim(zc_magazine_zone, mode);
7956 }
7957 
7958 void
zone_userspace_reboot_checks(void)7959 zone_userspace_reboot_checks(void)
7960 {
7961 	vm_size_t label_zone_size = zone_size_allocated(ipc_service_port_label_zone);
7962 	if (label_zone_size != 0) {
7963 		panic("Zone %s should be empty upon userspace reboot. Actual size: %lu.",
7964 		    ipc_service_port_label_zone->z_name, (unsigned long)label_zone_size);
7965 	}
7966 }
7967 
7968 void
zone_gc(zone_gc_level_t level)7969 zone_gc(zone_gc_level_t level)
7970 {
7971 	zone_reclaim_mode_t mode;
7972 	zone_t largest_zone = NULL;
7973 
7974 	switch (level) {
7975 	case ZONE_GC_TRIM:
7976 		mode = ZONE_RECLAIM_TRIM;
7977 		break;
7978 	case ZONE_GC_DRAIN:
7979 		mode = ZONE_RECLAIM_DRAIN;
7980 		break;
7981 	case ZONE_GC_JETSAM:
7982 		largest_zone = kill_process_in_largest_zone();
7983 		mode = ZONE_RECLAIM_TRIM;
7984 		break;
7985 	}
7986 
7987 	current_thread()->options |= TH_OPT_ZONE_PRIV;
7988 	lck_mtx_lock(&zone_gc_lock);
7989 
7990 	zone_reclaim_all(mode);
7991 
7992 	if (level == ZONE_GC_JETSAM && zone_map_nearing_exhaustion()) {
7993 		/*
7994 		 * If we possibly killed a process, but we're still critical,
7995 		 * we need to drain harder.
7996 		 */
7997 		zone_reclaim(largest_zone, ZONE_RECLAIM_DRAIN);
7998 		zone_reclaim_all(ZONE_RECLAIM_DRAIN);
7999 	}
8000 
8001 	lck_mtx_unlock(&zone_gc_lock);
8002 	current_thread()->options &= ~TH_OPT_ZONE_PRIV;
8003 }
8004 
8005 void
zone_gc_trim(void)8006 zone_gc_trim(void)
8007 {
8008 	zone_gc(ZONE_GC_TRIM);
8009 }
8010 
8011 void
zone_gc_drain(void)8012 zone_gc_drain(void)
8013 {
8014 	zone_gc(ZONE_GC_DRAIN);
8015 }
8016 
8017 static bool
zone_trim_needed(zone_t z)8018 zone_trim_needed(zone_t z)
8019 {
8020 	if (z->z_depot_cleanup) {
8021 		return true;
8022 	}
8023 
8024 	if (z->z_async_refilling) {
8025 		/* Don't fight with refill */
8026 		return false;
8027 	}
8028 
8029 	if (z->z_pcpu_cache) {
8030 		uint32_t e_n, f_n;
8031 
8032 		e_n = MIN(z->z_recirc_empty_wma, z->z_recirc_empty_min * Z_WMA_UNIT);
8033 		f_n = MIN(z->z_recirc_full_wma, z->z_recirc_full_min * Z_WMA_UNIT);
8034 
8035 		if (e_n > zc_autotrim_buckets() * Z_WMA_UNIT) {
8036 			return true;
8037 		}
8038 
8039 		if (f_n * zc_mag_size() > z->z_elems_rsv * Z_WMA_UNIT &&
8040 		    f_n * zc_mag_size() * zone_elem_inner_size(z) >
8041 		    zc_autotrim_size() * Z_WMA_UNIT) {
8042 			return true;
8043 		}
8044 
8045 		return false;
8046 	}
8047 
8048 	if (!zone_pva_is_null(z->z_pageq_empty)) {
8049 		uint32_t n;
8050 
8051 		n = MIN(z->z_elems_free_wma, z->z_elems_free_min);
8052 
8053 		return n >= z->z_elems_rsv + z->z_chunk_elems;
8054 	}
8055 
8056 	return false;
8057 }
8058 
8059 static void
zone_trim_async(__unused thread_call_param_t p0,__unused thread_call_param_t p1)8060 zone_trim_async(__unused thread_call_param_t p0, __unused thread_call_param_t p1)
8061 {
8062 	current_thread()->options |= TH_OPT_ZONE_PRIV;
8063 
8064 	zone_foreach(z) {
8065 		if (!z->collectable || z == zc_magazine_zone) {
8066 			continue;
8067 		}
8068 
8069 		if (zone_trim_needed(z)) {
8070 			lck_mtx_lock(&zone_gc_lock);
8071 			zone_reclaim(z, ZONE_RECLAIM_TRIM);
8072 			lck_mtx_unlock(&zone_gc_lock);
8073 		}
8074 	}
8075 
8076 	if (zone_trim_needed(zc_magazine_zone)) {
8077 		lck_mtx_lock(&zone_gc_lock);
8078 		zone_reclaim(zc_magazine_zone, ZONE_RECLAIM_TRIM);
8079 		lck_mtx_unlock(&zone_gc_lock);
8080 	}
8081 
8082 	current_thread()->options &= ~TH_OPT_ZONE_PRIV;
8083 }
8084 
8085 void
compute_zone_working_set_size(__unused void * param)8086 compute_zone_working_set_size(__unused void *param)
8087 {
8088 	uint32_t zc_auto = zc_enable_level();
8089 	bool needs_trim = false;
8090 
8091 	/*
8092 	 * Keep zone caching disabled until the first proc is made.
8093 	 */
8094 	if (__improbable(zone_caching_disabled < 0)) {
8095 		return;
8096 	}
8097 
8098 	zone_caching_disabled = vm_pool_low();
8099 
8100 	if (os_mul_overflow(zc_auto, Z_WMA_UNIT, &zc_auto)) {
8101 		zc_auto = 0;
8102 	}
8103 
8104 	zone_foreach(z) {
8105 		uint32_t old, wma, cur;
8106 		bool needs_caching = false;
8107 
8108 		if (z->z_self != z) {
8109 			continue;
8110 		}
8111 
8112 		zone_lock(z);
8113 
8114 		zone_recirc_lock_nopreempt(z);
8115 
8116 		if (z->z_pcpu_cache) {
8117 			wma = Z_WMA_MIX(z->z_recirc_empty_wma, z->z_recirc_empty_min);
8118 			z->z_recirc_empty_min = z->z_recirc.zd_empty;
8119 			z->z_recirc_empty_wma = wma;
8120 		} else {
8121 			wma = Z_WMA_MIX(z->z_elems_free_wma, z->z_elems_free_min);
8122 			z->z_elems_free_min = z->z_elems_free;
8123 			z->z_elems_free_wma = wma;
8124 		}
8125 
8126 		wma = Z_WMA_MIX(z->z_recirc_full_wma, z->z_recirc_full_min);
8127 		z->z_recirc_full_min = z->z_recirc.zd_full;
8128 		z->z_recirc_full_wma = wma;
8129 
8130 		/* fixed point decimal of contentions per second */
8131 		old = z->z_recirc_cont_wma;
8132 		cur = z->z_recirc_cont_cur * Z_WMA_UNIT /
8133 		    (zpercpu_count() * ZONE_WSS_UPDATE_PERIOD);
8134 		cur = (3 * old + cur) / 4;
8135 		zone_recirc_unlock_nopreempt(z);
8136 
8137 		if (z->z_pcpu_cache) {
8138 			uint16_t size = z->z_depot_size;
8139 
8140 			if (zone_exhausted(z)) {
8141 				if (z->z_depot_size) {
8142 					z->z_depot_size = 0;
8143 					z->z_depot_cleanup = true;
8144 				}
8145 			} else if (size < z->z_depot_limit && cur > zc_grow_level()) {
8146 				/*
8147 				 * lose history on purpose now
8148 				 * that we just grew, to give
8149 				 * the sytem time to adjust.
8150 				 */
8151 				cur  = (zc_grow_level() + zc_shrink_level()) / 2;
8152 				size = size ? (3 * size + 2) / 2 : 2;
8153 				z->z_depot_size = MIN(z->z_depot_limit, size);
8154 			} else if (size > 0 && cur <= zc_shrink_level()) {
8155 				/*
8156 				 * lose history on purpose now
8157 				 * that we just shrunk, to give
8158 				 * the sytem time to adjust.
8159 				 */
8160 				cur = (zc_grow_level() + zc_shrink_level()) / 2;
8161 				z->z_depot_size = size - 1;
8162 				z->z_depot_cleanup = true;
8163 			}
8164 		} else if (!z->z_nocaching && !zone_exhaustible(z) && zc_auto &&
8165 		    old >= zc_auto && cur >= zc_auto) {
8166 			needs_caching = true;
8167 		}
8168 
8169 		z->z_recirc_cont_wma = cur;
8170 		z->z_recirc_cont_cur = 0;
8171 
8172 		if (!needs_trim && zone_trim_needed(z)) {
8173 			needs_trim = true;
8174 		}
8175 
8176 		zone_unlock(z);
8177 
8178 		if (needs_caching) {
8179 			zone_enable_caching(z);
8180 		}
8181 	}
8182 
8183 	if (needs_trim) {
8184 		thread_call_enter(&zone_trim_callout);
8185 	}
8186 }
8187 
8188 #endif /* !ZALLOC_TEST */
8189 #pragma mark vm integration, MIG routines
8190 #if !ZALLOC_TEST
8191 
8192 extern unsigned int stack_total;
8193 #if defined (__x86_64__)
8194 extern unsigned int inuse_ptepages_count;
8195 #endif
8196 
8197 static const char *
panic_print_get_typename(kalloc_type_views_t cur,kalloc_type_views_t * next,bool is_kt_var)8198 panic_print_get_typename(kalloc_type_views_t cur, kalloc_type_views_t *next,
8199     bool is_kt_var)
8200 {
8201 	if (is_kt_var) {
8202 		next->ktv_var = (kalloc_type_var_view_t) cur.ktv_var->kt_next;
8203 		return cur.ktv_var->kt_name;
8204 	} else {
8205 		next->ktv_fixed = (kalloc_type_view_t) cur.ktv_fixed->kt_zv.zv_next;
8206 		return cur.ktv_fixed->kt_zv.zv_name;
8207 	}
8208 }
8209 
8210 static void
panic_print_types_in_zone(zone_t z,const char * debug_str)8211 panic_print_types_in_zone(zone_t z, const char* debug_str)
8212 {
8213 	kalloc_type_views_t kt_cur = {};
8214 	const char *prev_type = "";
8215 	size_t skip_over_site = sizeof("site.") - 1;
8216 	zone_security_flags_t zsflags = zone_security_config(z);
8217 	bool is_kt_var = false;
8218 
8219 	if (zsflags.z_kheap_id == KHEAP_ID_KT_VAR) {
8220 		uint32_t heap_id = KT_VAR_PTR_HEAP0 + ((zone_index(z) -
8221 		    kalloc_type_heap_array[KT_VAR_PTR_HEAP0].kh_zstart) / KHEAP_NUM_ZONES);
8222 		kt_cur.ktv_var = kalloc_type_heap_array[heap_id].kt_views;
8223 		is_kt_var = true;
8224 	} else {
8225 		kt_cur.ktv_fixed = (kalloc_type_view_t) z->z_views;
8226 	}
8227 
8228 	paniclog_append_noflush("kalloc %s in zone, %s (%s):\n",
8229 	    is_kt_var? "type arrays" : "types", debug_str, z->z_name);
8230 
8231 	while (kt_cur.ktv_fixed) {
8232 		kalloc_type_views_t kt_next = {};
8233 		const char *typename = panic_print_get_typename(kt_cur, &kt_next,
8234 		    is_kt_var) + skip_over_site;
8235 		if (strcmp(typename, prev_type) != 0) {
8236 			paniclog_append_noflush("\t%-50s\n", typename);
8237 			prev_type = typename;
8238 		}
8239 		kt_cur = kt_next;
8240 	}
8241 	paniclog_append_noflush("\n");
8242 }
8243 
8244 static void
panic_display_kalloc_types(void)8245 panic_display_kalloc_types(void)
8246 {
8247 	if (kalloc_type_src_zone) {
8248 		panic_print_types_in_zone(kalloc_type_src_zone, "addr belongs to");
8249 	}
8250 	if (kalloc_type_dst_zone) {
8251 		panic_print_types_in_zone(kalloc_type_dst_zone,
8252 		    "addr is being freed to");
8253 	}
8254 }
8255 
8256 static void
zone_find_n_largest(const uint32_t n,zone_t * largest_zones,uint64_t * zone_size)8257 zone_find_n_largest(const uint32_t n, zone_t *largest_zones,
8258     uint64_t *zone_size)
8259 {
8260 	zone_index_foreach(zid) {
8261 		zone_t z = &zone_array[zid];
8262 		vm_offset_t size = zone_size_wired(z);
8263 
8264 		if (zid == ZONE_ID_VM_PAGES) {
8265 			continue;
8266 		}
8267 		for (uint32_t i = 0; i < n; i++) {
8268 			if (size > zone_size[i]) {
8269 				largest_zones[i] = z;
8270 				zone_size[i] = size;
8271 				break;
8272 			}
8273 		}
8274 	}
8275 }
8276 
8277 #define NUM_LARGEST_ZONES 5
8278 static void
panic_display_largest_zones(void)8279 panic_display_largest_zones(void)
8280 {
8281 	zone_t largest_zones[NUM_LARGEST_ZONES]  = { NULL };
8282 	uint64_t largest_size[NUM_LARGEST_ZONES] = { 0 };
8283 
8284 	zone_find_n_largest(NUM_LARGEST_ZONES, (zone_t *) &largest_zones,
8285 	    (uint64_t *) &largest_size);
8286 
8287 	paniclog_append_noflush("Largest zones:\n%-28s %10s %10s\n",
8288 	    "Zone Name", "Cur Size", "Free Size");
8289 	for (uint32_t i = 0; i < NUM_LARGEST_ZONES; i++) {
8290 		zone_t z = largest_zones[i];
8291 		paniclog_append_noflush("%-8s%-20s %9u%c %9u%c\n",
8292 		    zone_heap_name(z), z->z_name,
8293 		    mach_vm_size_pretty(largest_size[i]),
8294 		    mach_vm_size_unit(largest_size[i]),
8295 		    mach_vm_size_pretty(zone_size_free(z)),
8296 		    mach_vm_size_unit(zone_size_free(z)));
8297 	}
8298 }
8299 
8300 static void
panic_display_zprint(void)8301 panic_display_zprint(void)
8302 {
8303 	panic_display_largest_zones();
8304 	paniclog_append_noflush("%-20s %10lu\n", "Kernel Stacks",
8305 	    (uintptr_t)(kernel_stack_size * stack_total));
8306 #if defined (__x86_64__)
8307 	paniclog_append_noflush("%-20s %10lu\n", "PageTables",
8308 	    (uintptr_t)ptoa(inuse_ptepages_count));
8309 #endif
8310 	paniclog_append_noflush("%-20s %10llu\n", "Kalloc.Large",
8311 	    counter_load(&kalloc_large_total));
8312 
8313 	if (panic_kext_memory_info) {
8314 		mach_memory_info_t *mem_info = panic_kext_memory_info;
8315 
8316 		paniclog_append_noflush("\n%-5s %10s\n", "Kmod", "Size");
8317 		for (uint32_t i = 0; i < panic_kext_memory_size / sizeof(mem_info[0]); i++) {
8318 			if ((mem_info[i].flags & VM_KERN_SITE_TYPE) != VM_KERN_SITE_KMOD) {
8319 				continue;
8320 			}
8321 			if (mem_info[i].size > (1024 * 1024)) {
8322 				paniclog_append_noflush("%-5lld %10lld\n",
8323 				    mem_info[i].site, mem_info[i].size);
8324 			}
8325 		}
8326 	}
8327 }
8328 
8329 static void
panic_display_zone_info(void)8330 panic_display_zone_info(void)
8331 {
8332 	paniclog_append_noflush("Zone info:\n");
8333 	paniclog_append_noflush("  Zone map: %p - %p\n",
8334 	    (void *)zone_info.zi_map_range.min_address,
8335 	    (void *)zone_info.zi_map_range.max_address);
8336 #if CONFIG_PROB_GZALLOC
8337 	if (pgz_submap) {
8338 		paniclog_append_noflush("  . PGZ   : %p - %p\n",
8339 		    (void *)pgz_submap->min_offset,
8340 		    (void *)pgz_submap->max_offset);
8341 	}
8342 #endif /* CONFIG_PROB_GZALLOC */
8343 	for (int i = 0; i < Z_SUBMAP_IDX_COUNT; i++) {
8344 		vm_map_t map = zone_submaps[i];
8345 
8346 		if (map == VM_MAP_NULL) {
8347 			continue;
8348 		}
8349 		paniclog_append_noflush("  . %-6s: %p - %p\n",
8350 		    zone_submaps_names[i],
8351 		    (void *)map->min_offset,
8352 		    (void *)map->max_offset);
8353 	}
8354 	paniclog_append_noflush("  Metadata: %p - %p\n"
8355 	    "  Bitmaps : %p - %p\n"
8356 	    "  Extra   : %p - %p\n"
8357 	    "\n",
8358 	    (void *)zone_info.zi_meta_range.min_address,
8359 	    (void *)zone_info.zi_meta_range.max_address,
8360 	    (void *)zone_info.zi_bits_range.min_address,
8361 	    (void *)zone_info.zi_bits_range.max_address,
8362 	    (void *)zone_info.zi_xtra_range.min_address,
8363 	    (void *)zone_info.zi_xtra_range.max_address);
8364 }
8365 
8366 static void
panic_display_zone_fault(vm_offset_t addr)8367 panic_display_zone_fault(vm_offset_t addr)
8368 {
8369 	struct zone_page_metadata meta = { };
8370 	vm_map_t map = VM_MAP_NULL;
8371 	vm_offset_t oob_offs = 0, size = 0;
8372 	int map_idx = -1;
8373 	zone_t z = NULL;
8374 	const char *kind = "whild deref";
8375 	bool oob = false;
8376 
8377 	/*
8378 	 * First: look if we bumped into guard pages between submaps
8379 	 */
8380 	for (int i = 0; i < Z_SUBMAP_IDX_COUNT; i++) {
8381 		map = zone_submaps[i];
8382 		if (map == VM_MAP_NULL) {
8383 			continue;
8384 		}
8385 
8386 		if (addr >= map->min_offset && addr < map->max_offset) {
8387 			map_idx = i;
8388 			break;
8389 		}
8390 	}
8391 
8392 	if (map_idx == -1) {
8393 		/* this really shouldn't happen, submaps are back to back */
8394 		return;
8395 	}
8396 
8397 	paniclog_append_noflush("Probabilistic GZAlloc Report:\n");
8398 
8399 	/*
8400 	 * Second: look if there's just no metadata at all
8401 	 */
8402 	if (ml_nofault_copy((vm_offset_t)zone_meta_from_addr(addr),
8403 	    (vm_offset_t)&meta, sizeof(meta)) != sizeof(meta) ||
8404 	    meta.zm_index == 0 || meta.zm_index >= MAX_ZONES ||
8405 	    zone_array[meta.zm_index].z_self == NULL) {
8406 		paniclog_append_noflush("  Zone    : <unknown>\n");
8407 		kind = "wild deref, missing or invalid metadata";
8408 	} else {
8409 		z = &zone_array[meta.zm_index];
8410 		paniclog_append_noflush("  Zone    : %s%s\n",
8411 		    zone_heap_name(z), zone_name(z));
8412 		if (meta.zm_chunk_len == ZM_PGZ_GUARD) {
8413 			kind = "out-of-bounds (high confidence)";
8414 			oob = true;
8415 			size = zone_element_size((void *)addr,
8416 			    &z, false, &oob_offs);
8417 		} else {
8418 			kind = "use-after-free (medium confidence)";
8419 		}
8420 	}
8421 
8422 	paniclog_append_noflush("  Address : %p\n", (void *)addr);
8423 	if (oob) {
8424 		paniclog_append_noflush("  Element : [%p, %p) of size %d\n",
8425 		    (void *)(trunc_page(addr) - (size - oob_offs)),
8426 		    (void *)trunc_page(addr), (uint32_t)(size - oob_offs));
8427 	}
8428 	paniclog_append_noflush("  Submap  : %s [%p; %p)\n",
8429 	    zone_submaps_names[map_idx],
8430 	    (void *)map->min_offset, (void *)map->max_offset);
8431 	paniclog_append_noflush("  Kind    : %s\n", kind);
8432 	if (oob) {
8433 		paniclog_append_noflush("  Access  : %d byte(s) past\n",
8434 		    (uint32_t)(addr & PAGE_MASK) + 1);
8435 	}
8436 	paniclog_append_noflush("  Metadata: zid:%d inl:%d cl:0x%x "
8437 	    "0x%04x 0x%08x 0x%08x 0x%08x\n",
8438 	    meta.zm_index, meta.zm_inline_bitmap, meta.zm_chunk_len,
8439 	    meta.zm_alloc_size, meta.zm_bitmap,
8440 	    meta.zm_page_next.packed_address,
8441 	    meta.zm_page_prev.packed_address);
8442 	paniclog_append_noflush("\n");
8443 }
8444 
8445 void
panic_display_zalloc(void)8446 panic_display_zalloc(void)
8447 {
8448 	bool keepsyms = false;
8449 
8450 	PE_parse_boot_argn("keepsyms", &keepsyms, sizeof(keepsyms));
8451 
8452 	panic_display_zone_info();
8453 
8454 	if (panic_fault_address) {
8455 #if CONFIG_PROB_GZALLOC
8456 		if (pgz_owned(panic_fault_address)) {
8457 			panic_display_pgz_uaf_info(keepsyms, panic_fault_address);
8458 		} else
8459 #endif /* CONFIG_PROB_GZALLOC */
8460 		if (zone_maps_owned(panic_fault_address, 1)) {
8461 			panic_display_zone_fault(panic_fault_address);
8462 		}
8463 	}
8464 
8465 	if (panic_include_zprint) {
8466 		panic_display_zprint();
8467 	} else if (zone_map_nearing_threshold(ZONE_MAP_EXHAUSTION_PRINT_PANIC)) {
8468 		panic_display_largest_zones();
8469 	}
8470 #if CONFIG_ZLEAKS
8471 	if (zleak_active) {
8472 		panic_display_zleaks(keepsyms);
8473 	}
8474 #endif
8475 	if (panic_include_kalloc_types) {
8476 		panic_display_kalloc_types();
8477 	}
8478 }
8479 
8480 /*
8481  * Creates a vm_map_copy_t to return to the caller of mach_* MIG calls
8482  * requesting zone information.
8483  * Frees unused pages towards the end of the region, and zero'es out unused
8484  * space on the last page.
8485  */
8486 static vm_map_copy_t
create_vm_map_copy(vm_offset_t start_addr,vm_size_t total_size,vm_size_t used_size)8487 create_vm_map_copy(
8488 	vm_offset_t             start_addr,
8489 	vm_size_t               total_size,
8490 	vm_size_t               used_size)
8491 {
8492 	kern_return_t   kr;
8493 	vm_offset_t             end_addr;
8494 	vm_size_t               free_size;
8495 	vm_map_copy_t   copy;
8496 
8497 	if (used_size != total_size) {
8498 		end_addr = start_addr + used_size;
8499 		free_size = total_size - (round_page(end_addr) - start_addr);
8500 
8501 		if (free_size >= PAGE_SIZE) {
8502 			kmem_free(ipc_kernel_map,
8503 			    round_page(end_addr), free_size);
8504 		}
8505 		bzero((char *) end_addr, round_page(end_addr) - end_addr);
8506 	}
8507 
8508 	kr = vm_map_copyin(ipc_kernel_map, (vm_map_address_t)start_addr,
8509 	    (vm_map_size_t)used_size, TRUE, &copy);
8510 	assert(kr == KERN_SUCCESS);
8511 
8512 	return copy;
8513 }
8514 
8515 static boolean_t
get_zone_info(zone_t z,mach_zone_name_t * zn,mach_zone_info_t * zi)8516 get_zone_info(
8517 	zone_t                   z,
8518 	mach_zone_name_t        *zn,
8519 	mach_zone_info_t        *zi)
8520 {
8521 	struct zone zcopy;
8522 	vm_size_t cached = 0;
8523 
8524 	assert(z != ZONE_NULL);
8525 	zone_lock(z);
8526 	if (!z->z_self) {
8527 		zone_unlock(z);
8528 		return FALSE;
8529 	}
8530 	zcopy = *z;
8531 	if (z->z_pcpu_cache) {
8532 		zpercpu_foreach(zc, z->z_pcpu_cache) {
8533 			cached += zc->zc_alloc_cur + zc->zc_free_cur;
8534 			cached += zc->zc_depot.zd_full * zc_mag_size();
8535 		}
8536 	}
8537 	zone_unlock(z);
8538 
8539 	if (zn != NULL) {
8540 		/*
8541 		 * Append kalloc heap name to zone name (if zone is used by kalloc)
8542 		 */
8543 		char temp_zone_name[MAX_ZONE_NAME] = "";
8544 		snprintf(temp_zone_name, MAX_ZONE_NAME, "%s%s",
8545 		    zone_heap_name(z), z->z_name);
8546 
8547 		/* assuming here the name data is static */
8548 		(void) __nosan_strlcpy(zn->mzn_name, temp_zone_name,
8549 		    strlen(temp_zone_name) + 1);
8550 	}
8551 
8552 	if (zi != NULL) {
8553 		*zi = (mach_zone_info_t) {
8554 			.mzi_count = zone_count_allocated(&zcopy) - cached,
8555 			.mzi_cur_size = ptoa_64(zone_scale_for_percpu(&zcopy, zcopy.z_wired_cur)),
8556 			// max_size for zprint is now high-watermark of pages used
8557 			.mzi_max_size = ptoa_64(zone_scale_for_percpu(&zcopy, zcopy.z_wired_hwm)),
8558 			.mzi_elem_size = zone_scale_for_percpu(&zcopy, zcopy.z_elem_size),
8559 			.mzi_alloc_size = ptoa_64(zcopy.z_chunk_pages),
8560 			.mzi_exhaustible = (uint64_t)zone_exhaustible(&zcopy),
8561 		};
8562 		if (zcopy.z_chunk_pages == 0) {
8563 			/* this is a zcache */
8564 			zi->mzi_cur_size = zcopy.z_elems_avail * zcopy.z_elem_size;
8565 		}
8566 		zpercpu_foreach(zs, zcopy.z_stats) {
8567 			zi->mzi_sum_size += zs->zs_mem_allocated;
8568 		}
8569 		if (zcopy.collectable) {
8570 			SET_MZI_COLLECTABLE_BYTES(zi->mzi_collectable,
8571 			    ptoa_64(zone_scale_for_percpu(&zcopy, zcopy.z_wired_empty)));
8572 			SET_MZI_COLLECTABLE_FLAG(zi->mzi_collectable, TRUE);
8573 		}
8574 	}
8575 
8576 	return TRUE;
8577 }
8578 
8579 /* mach_memory_info entitlement */
8580 #define MEMORYINFO_ENTITLEMENT "com.apple.private.memoryinfo"
8581 
8582 /* macro needed to rate-limit mach_memory_info */
8583 #define NSEC_DAY (NSEC_PER_SEC * 60 * 60 * 24)
8584 
8585 /* declarations necessary to call kauth_cred_issuser() */
8586 struct ucred;
8587 extern int kauth_cred_issuser(struct ucred *);
8588 extern struct ucred *kauth_cred_get(void);
8589 
8590 static kern_return_t
8591 mach_memory_info_internal(
8592 	host_t                  host,
8593 	mach_zone_name_array_t  *namesp,
8594 	mach_msg_type_number_t  *namesCntp,
8595 	mach_zone_info_array_t  *infop,
8596 	mach_msg_type_number_t  *infoCntp,
8597 	mach_memory_info_array_t *memoryInfop,
8598 	mach_msg_type_number_t   *memoryInfoCntp,
8599 	bool                     redact_info);
8600 
8601 static kern_return_t
mach_memory_info_security_check(bool redact_info)8602 mach_memory_info_security_check(bool redact_info)
8603 {
8604 	/* If not root, only allow redacted calls. */
8605 	if (!kauth_cred_issuser(kauth_cred_get()) && !redact_info) {
8606 		return KERN_NO_ACCESS;
8607 	}
8608 
8609 	if (PE_srd_fused) {
8610 		return KERN_SUCCESS;
8611 	}
8612 
8613 	/* If does not have the memory entitlement, fail. */
8614 #if CONFIG_DEBUGGER_FOR_ZONE_INFO
8615 	task_t task = current_task();
8616 	if (task != kernel_task && !IOTaskHasEntitlement(task, MEMORYINFO_ENTITLEMENT)) {
8617 		return KERN_DENIED;
8618 	}
8619 
8620 	/*
8621 	 * On release non-mac arm devices, allow mach_memory_info
8622 	 * to be called twice per day per boot. memorymaintenanced
8623 	 * calls it once per day, which leaves room for a sysdiagnose.
8624 	 * Allow redacted version to be called without rate limit.
8625 	 */
8626 
8627 	if (!redact_info) {
8628 		static uint64_t first_call = 0, second_call = 0;
8629 		uint64_t now = 0;
8630 		absolutetime_to_nanoseconds(ml_get_timebase(), &now);
8631 
8632 		if (!first_call) {
8633 			first_call = now;
8634 		} else if (!second_call) {
8635 			second_call = now;
8636 		} else if (first_call + NSEC_DAY > now) {
8637 			return KERN_DENIED;
8638 		} else if (first_call + NSEC_DAY < now) {
8639 			first_call = now;
8640 			second_call = 0;
8641 		}
8642 	}
8643 #endif
8644 
8645 	return KERN_SUCCESS;
8646 }
8647 
8648 kern_return_t
mach_zone_info(mach_port_t host_port,mach_zone_name_array_t * namesp,mach_msg_type_number_t * namesCntp,mach_zone_info_array_t * infop,mach_msg_type_number_t * infoCntp)8649 mach_zone_info(
8650 	mach_port_t             host_port,
8651 	mach_zone_name_array_t  *namesp,
8652 	mach_msg_type_number_t  *namesCntp,
8653 	mach_zone_info_array_t  *infop,
8654 	mach_msg_type_number_t  *infoCntp)
8655 {
8656 	return mach_memory_info(host_port, namesp, namesCntp, infop, infoCntp, NULL, NULL);
8657 }
8658 
8659 kern_return_t
mach_memory_info(mach_port_t host_port,mach_zone_name_array_t * namesp,mach_msg_type_number_t * namesCntp,mach_zone_info_array_t * infop,mach_msg_type_number_t * infoCntp,mach_memory_info_array_t * memoryInfop,mach_msg_type_number_t * memoryInfoCntp)8660 mach_memory_info(
8661 	mach_port_t             host_port,
8662 	mach_zone_name_array_t  *namesp,
8663 	mach_msg_type_number_t  *namesCntp,
8664 	mach_zone_info_array_t  *infop,
8665 	mach_msg_type_number_t  *infoCntp,
8666 	mach_memory_info_array_t *memoryInfop,
8667 	mach_msg_type_number_t   *memoryInfoCntp)
8668 {
8669 	bool redact_info = false;
8670 	host_t host = HOST_NULL;
8671 
8672 	host = convert_port_to_host_priv(host_port);
8673 	if (host == HOST_NULL) {
8674 		redact_info = true;
8675 		host = convert_port_to_host(host_port);
8676 	}
8677 
8678 	return mach_memory_info_internal(host, namesp, namesCntp, infop, infoCntp, memoryInfop, memoryInfoCntp, redact_info);
8679 }
8680 
8681 static void
zone_info_redact(mach_zone_info_t * zi)8682 zone_info_redact(mach_zone_info_t *zi)
8683 {
8684 	zi->mzi_cur_size = 0;
8685 	zi->mzi_max_size = 0;
8686 	zi->mzi_alloc_size = 0;
8687 	zi->mzi_sum_size = 0;
8688 	zi->mzi_collectable = 0;
8689 }
8690 
8691 static bool
zone_info_needs_to_be_coalesced(int zone_index)8692 zone_info_needs_to_be_coalesced(int zone_index)
8693 {
8694 	zone_security_flags_t zsflags = zone_security_array[zone_index];
8695 	if (zsflags.z_kalloc_type || zsflags.z_kheap_id == KHEAP_ID_KT_VAR) {
8696 		return true;
8697 	}
8698 	return false;
8699 }
8700 
8701 static bool
zone_info_find_coalesce_zone(mach_zone_info_t * zi,mach_zone_info_t * info,int * coalesce,int coalesce_count,int * coalesce_index)8702 zone_info_find_coalesce_zone(
8703 	mach_zone_info_t *zi,
8704 	mach_zone_info_t *info,
8705 	int              *coalesce,
8706 	int              coalesce_count,
8707 	int              *coalesce_index)
8708 {
8709 	for (int i = 0; i < coalesce_count; i++) {
8710 		if (zi->mzi_elem_size == info[coalesce[i]].mzi_elem_size) {
8711 			*coalesce_index = coalesce[i];
8712 			return true;
8713 		}
8714 	}
8715 
8716 	return false;
8717 }
8718 
8719 static void
zone_info_coalesce(mach_zone_info_t * info,int coalesce_index,mach_zone_info_t * zi)8720 zone_info_coalesce(
8721 	mach_zone_info_t *info,
8722 	int coalesce_index,
8723 	mach_zone_info_t *zi)
8724 {
8725 	info[coalesce_index].mzi_count += zi->mzi_count;
8726 }
8727 
8728 kern_return_t
mach_memory_info_sample(mach_zone_name_t * names,mach_zone_info_t * info,int * coalesce,unsigned int * zonesCnt,mach_memory_info_t * memoryInfo,unsigned int memoryInfoCnt,bool redact_info)8729 mach_memory_info_sample(
8730 	mach_zone_name_t *names,
8731 	mach_zone_info_t *info,
8732 	int              *coalesce,
8733 	unsigned int     *zonesCnt,
8734 	mach_memory_info_t *memoryInfo,
8735 	unsigned int       memoryInfoCnt,
8736 	bool               redact_info)
8737 {
8738 	int                     coalesce_count = 0;
8739 	unsigned int            max_zones, used_zones = 0;
8740 	mach_zone_name_t        *zn;
8741 	mach_zone_info_t        *zi;
8742 	kern_return_t           kr;
8743 
8744 	uint64_t                zones_collectable_bytes = 0;
8745 
8746 	kr = mach_memory_info_security_check(redact_info);
8747 	if (kr != KERN_SUCCESS) {
8748 		return kr;
8749 	}
8750 
8751 	max_zones = *zonesCnt;
8752 
8753 	bzero(names, max_zones * sizeof(*names));
8754 	bzero(info, max_zones * sizeof(*info));
8755 	if (redact_info) {
8756 		bzero(coalesce, max_zones * sizeof(*coalesce));
8757 	}
8758 
8759 	zn = &names[0];
8760 	zi = &info[0];
8761 
8762 	zone_index_foreach(i) {
8763 		if (used_zones > max_zones) {
8764 			break;
8765 		}
8766 
8767 		if (!get_zone_info(&(zone_array[i]), zn, zi)) {
8768 			continue;
8769 		}
8770 
8771 		if (!redact_info) {
8772 			zones_collectable_bytes += GET_MZI_COLLECTABLE_BYTES(zi->mzi_collectable);
8773 			zn++;
8774 			zi++;
8775 			used_zones++;
8776 			continue;
8777 		}
8778 
8779 		zone_info_redact(zi);
8780 		if (!zone_info_needs_to_be_coalesced(i)) {
8781 			zn++;
8782 			zi++;
8783 			used_zones++;
8784 			continue;
8785 		}
8786 
8787 		int coalesce_index;
8788 		bool found_coalesce_zone = zone_info_find_coalesce_zone(zi, info,
8789 		    coalesce, coalesce_count, &coalesce_index);
8790 
8791 		/* Didn't find a zone to coalesce */
8792 		if (!found_coalesce_zone) {
8793 			/* Updates the zone name */
8794 			__nosan_bzero(zn->mzn_name, MAX_ZONE_NAME);
8795 			snprintf(zn->mzn_name, MAX_ZONE_NAME, "kalloc.%d",
8796 			    (int)zi->mzi_elem_size);
8797 
8798 			coalesce[coalesce_count] = used_zones;
8799 			coalesce_count++;
8800 			zn++;
8801 			zi++;
8802 			used_zones++;
8803 			continue;
8804 		}
8805 
8806 		zone_info_coalesce(info, coalesce_index, zi);
8807 	}
8808 
8809 	*zonesCnt = used_zones;
8810 
8811 	if (memoryInfo) {
8812 		bzero(memoryInfo, memoryInfoCnt * sizeof(*memoryInfo));
8813 		kr = vm_page_diagnose(memoryInfo, memoryInfoCnt, zones_collectable_bytes, redact_info);
8814 		if (kr != KERN_SUCCESS) {
8815 			return kr;
8816 		}
8817 	}
8818 
8819 	return kr;
8820 }
8821 
8822 static kern_return_t
mach_memory_info_internal(host_t host,mach_zone_name_array_t * namesp,mach_msg_type_number_t * namesCntp,mach_zone_info_array_t * infop,mach_msg_type_number_t * infoCntp,mach_memory_info_array_t * memoryInfop,mach_msg_type_number_t * memoryInfoCntp,bool redact_info)8823 mach_memory_info_internal(
8824 	host_t                  host,
8825 	mach_zone_name_array_t  *namesp,
8826 	mach_msg_type_number_t  *namesCntp,
8827 	mach_zone_info_array_t  *infop,
8828 	mach_msg_type_number_t  *infoCntp,
8829 	mach_memory_info_array_t *memoryInfop,
8830 	mach_msg_type_number_t   *memoryInfoCntp,
8831 	bool                     redact_info)
8832 {
8833 	mach_zone_name_t        *names;
8834 	vm_offset_t             names_addr;
8835 	vm_size_t               names_size;
8836 
8837 	mach_zone_info_t        *info;
8838 	vm_offset_t             info_addr;
8839 	vm_size_t               info_size;
8840 
8841 	int                     *coalesce;
8842 	vm_offset_t             coalesce_addr;
8843 	vm_size_t               coalesce_size;
8844 
8845 	mach_memory_info_t      *memory_info = NULL;
8846 	vm_offset_t             memory_info_addr = 0;
8847 	vm_size_t               memory_info_size;
8848 	vm_size_t               memory_info_vmsize;
8849 	vm_map_copy_t           memory_info_copy;
8850 	unsigned int            num_info = 0;
8851 
8852 	unsigned int            max_zones, used_zones;
8853 	kern_return_t           kr;
8854 
8855 	if (host == HOST_NULL) {
8856 		return KERN_INVALID_HOST;
8857 	}
8858 
8859 	/*
8860 	 *	We assume that zones aren't freed once allocated.
8861 	 *	We won't pick up any zones that are allocated later.
8862 	 */
8863 
8864 	max_zones = os_atomic_load(&num_zones, relaxed);
8865 
8866 	names_size = round_page(max_zones * sizeof *names);
8867 	kr = kmem_alloc(ipc_kernel_map, &names_addr, names_size,
8868 	    KMA_PAGEABLE | KMA_DATA, VM_KERN_MEMORY_IPC);
8869 	if (kr != KERN_SUCCESS) {
8870 		return kr;
8871 	}
8872 	names = (mach_zone_name_t *) names_addr;
8873 
8874 	info_size = round_page(max_zones * sizeof *info);
8875 	kr = kmem_alloc(ipc_kernel_map, &info_addr, info_size,
8876 	    KMA_PAGEABLE | KMA_DATA, VM_KERN_MEMORY_IPC);
8877 	if (kr != KERN_SUCCESS) {
8878 		kmem_free(ipc_kernel_map,
8879 		    names_addr, names_size);
8880 		return kr;
8881 	}
8882 	info = (mach_zone_info_t *) info_addr;
8883 
8884 	if (redact_info) {
8885 		coalesce_size = round_page(max_zones * sizeof *coalesce);
8886 		kr = kmem_alloc(ipc_kernel_map, &coalesce_addr, coalesce_size,
8887 		    KMA_PAGEABLE | KMA_DATA, VM_KERN_MEMORY_IPC);
8888 		if (kr != KERN_SUCCESS) {
8889 			kmem_free(ipc_kernel_map,
8890 			    names_addr, names_size);
8891 			kmem_free(ipc_kernel_map,
8892 			    info_addr, info_size);
8893 			return kr;
8894 		}
8895 		coalesce = (int *)coalesce_addr;
8896 	}
8897 
8898 	if (memoryInfop && memoryInfoCntp) {
8899 		num_info = vm_page_diagnose_estimate();
8900 		memory_info_size = num_info * sizeof(*memory_info);
8901 		memory_info_vmsize = round_page(memory_info_size);
8902 		kr = kmem_alloc(ipc_kernel_map, &memory_info_addr, memory_info_vmsize,
8903 		    KMA_PAGEABLE | KMA_DATA, VM_KERN_MEMORY_IPC);
8904 		if (kr != KERN_SUCCESS) {
8905 			return kr;
8906 		}
8907 
8908 		kr = vm_map_wire_kernel(ipc_kernel_map, memory_info_addr, memory_info_addr + memory_info_vmsize,
8909 		    VM_PROT_READ | VM_PROT_WRITE, VM_KERN_MEMORY_IPC, FALSE);
8910 		assert(kr == KERN_SUCCESS);
8911 
8912 		memory_info = (mach_memory_info_t *) memory_info_addr;
8913 	}
8914 
8915 	used_zones = max_zones;
8916 	mach_memory_info_sample(names, info, coalesce, &used_zones, memory_info, num_info, redact_info);
8917 
8918 	if (redact_info) {
8919 		kmem_free(ipc_kernel_map, coalesce_addr, coalesce_size);
8920 	}
8921 
8922 	*namesp = (mach_zone_name_t *) create_vm_map_copy(names_addr, names_size, used_zones * sizeof *names);
8923 	*namesCntp = used_zones;
8924 
8925 	*infop = (mach_zone_info_t *) create_vm_map_copy(info_addr, info_size, used_zones * sizeof *info);
8926 	*infoCntp = used_zones;
8927 
8928 	if (memoryInfop && memoryInfoCntp) {
8929 		kr = vm_map_unwire(ipc_kernel_map, memory_info_addr, memory_info_addr + memory_info_vmsize, FALSE);
8930 		assert(kr == KERN_SUCCESS);
8931 
8932 		kr = vm_map_copyin(ipc_kernel_map, (vm_map_address_t)memory_info_addr,
8933 		    (vm_map_size_t)memory_info_size, TRUE, &memory_info_copy);
8934 		assert(kr == KERN_SUCCESS);
8935 
8936 		*memoryInfop = (mach_memory_info_t *) memory_info_copy;
8937 		*memoryInfoCntp = num_info;
8938 	}
8939 
8940 	return KERN_SUCCESS;
8941 }
8942 
8943 kern_return_t
mach_zone_info_for_zone(host_priv_t host,mach_zone_name_t name,mach_zone_info_t * infop)8944 mach_zone_info_for_zone(
8945 	host_priv_t                     host,
8946 	mach_zone_name_t        name,
8947 	mach_zone_info_t        *infop)
8948 {
8949 	zone_t zone_ptr;
8950 
8951 	if (host == HOST_NULL) {
8952 		return KERN_INVALID_HOST;
8953 	}
8954 
8955 #if CONFIG_DEBUGGER_FOR_ZONE_INFO
8956 	if (!PE_i_can_has_debugger(NULL)) {
8957 		return KERN_INVALID_HOST;
8958 	}
8959 #endif
8960 
8961 	if (infop == NULL) {
8962 		return KERN_INVALID_ARGUMENT;
8963 	}
8964 
8965 	zone_ptr = ZONE_NULL;
8966 	zone_foreach(z) {
8967 		/*
8968 		 * Append kalloc heap name to zone name (if zone is used by kalloc)
8969 		 */
8970 		char temp_zone_name[MAX_ZONE_NAME] = "";
8971 		snprintf(temp_zone_name, MAX_ZONE_NAME, "%s%s",
8972 		    zone_heap_name(z), z->z_name);
8973 
8974 		/* Find the requested zone by name */
8975 		if (track_this_zone(temp_zone_name, name.mzn_name)) {
8976 			zone_ptr = z;
8977 			break;
8978 		}
8979 	}
8980 
8981 	/* No zones found with the requested zone name */
8982 	if (zone_ptr == ZONE_NULL) {
8983 		return KERN_INVALID_ARGUMENT;
8984 	}
8985 
8986 	if (get_zone_info(zone_ptr, NULL, infop)) {
8987 		return KERN_SUCCESS;
8988 	}
8989 	return KERN_FAILURE;
8990 }
8991 
8992 kern_return_t
mach_zone_info_for_largest_zone(host_priv_t host,mach_zone_name_t * namep,mach_zone_info_t * infop)8993 mach_zone_info_for_largest_zone(
8994 	host_priv_t                     host,
8995 	mach_zone_name_t        *namep,
8996 	mach_zone_info_t        *infop)
8997 {
8998 	if (host == HOST_NULL) {
8999 		return KERN_INVALID_HOST;
9000 	}
9001 
9002 #if CONFIG_DEBUGGER_FOR_ZONE_INFO
9003 	if (!PE_i_can_has_debugger(NULL)) {
9004 		return KERN_INVALID_HOST;
9005 	}
9006 #endif
9007 
9008 	if (namep == NULL || infop == NULL) {
9009 		return KERN_INVALID_ARGUMENT;
9010 	}
9011 
9012 	if (get_zone_info(zone_find_largest(NULL), namep, infop)) {
9013 		return KERN_SUCCESS;
9014 	}
9015 	return KERN_FAILURE;
9016 }
9017 
9018 uint64_t
get_zones_collectable_bytes(void)9019 get_zones_collectable_bytes(void)
9020 {
9021 	uint64_t zones_collectable_bytes = 0;
9022 	mach_zone_info_t zi;
9023 
9024 	zone_foreach(z) {
9025 		if (get_zone_info(z, NULL, &zi)) {
9026 			zones_collectable_bytes +=
9027 			    GET_MZI_COLLECTABLE_BYTES(zi.mzi_collectable);
9028 		}
9029 	}
9030 
9031 	return zones_collectable_bytes;
9032 }
9033 
9034 kern_return_t
mach_zone_get_zlog_zones(host_priv_t host,mach_zone_name_array_t * namesp,mach_msg_type_number_t * namesCntp)9035 mach_zone_get_zlog_zones(
9036 	host_priv_t                             host,
9037 	mach_zone_name_array_t  *namesp,
9038 	mach_msg_type_number_t  *namesCntp)
9039 {
9040 #if ZALLOC_ENABLE_LOGGING
9041 	unsigned int max_zones, logged_zones, i;
9042 	kern_return_t kr;
9043 	zone_t zone_ptr;
9044 	mach_zone_name_t *names;
9045 	vm_offset_t names_addr;
9046 	vm_size_t names_size;
9047 
9048 	if (host == HOST_NULL) {
9049 		return KERN_INVALID_HOST;
9050 	}
9051 
9052 	if (namesp == NULL || namesCntp == NULL) {
9053 		return KERN_INVALID_ARGUMENT;
9054 	}
9055 
9056 	max_zones = os_atomic_load(&num_zones, relaxed);
9057 
9058 	names_size = round_page(max_zones * sizeof *names);
9059 	kr = kmem_alloc(ipc_kernel_map, &names_addr, names_size,
9060 	    KMA_PAGEABLE | KMA_DATA, VM_KERN_MEMORY_IPC);
9061 	if (kr != KERN_SUCCESS) {
9062 		return kr;
9063 	}
9064 	names = (mach_zone_name_t *) names_addr;
9065 
9066 	zone_ptr = ZONE_NULL;
9067 	logged_zones = 0;
9068 	for (i = 0; i < max_zones; i++) {
9069 		zone_t z = &(zone_array[i]);
9070 		assert(z != ZONE_NULL);
9071 
9072 		/* Copy out the zone name if zone logging is enabled */
9073 		if (z->z_btlog) {
9074 			get_zone_info(z, &names[logged_zones], NULL);
9075 			logged_zones++;
9076 		}
9077 	}
9078 
9079 	*namesp = (mach_zone_name_t *) create_vm_map_copy(names_addr, names_size, logged_zones * sizeof *names);
9080 	*namesCntp = logged_zones;
9081 
9082 	return KERN_SUCCESS;
9083 
9084 #else /* ZALLOC_ENABLE_LOGGING */
9085 #pragma unused(host, namesp, namesCntp)
9086 	return KERN_FAILURE;
9087 #endif /* ZALLOC_ENABLE_LOGGING */
9088 }
9089 
9090 kern_return_t
mach_zone_get_btlog_records(host_priv_t host,mach_zone_name_t name,zone_btrecord_array_t * recsp,mach_msg_type_number_t * numrecs)9091 mach_zone_get_btlog_records(
9092 	host_priv_t             host,
9093 	mach_zone_name_t        name,
9094 	zone_btrecord_array_t  *recsp,
9095 	mach_msg_type_number_t *numrecs)
9096 {
9097 #if ZALLOC_ENABLE_LOGGING
9098 	zone_btrecord_t *recs;
9099 	kern_return_t    kr;
9100 	vm_address_t     addr;
9101 	vm_size_t        size;
9102 	zone_t           zone_ptr;
9103 	vm_map_copy_t    copy;
9104 
9105 	if (host == HOST_NULL) {
9106 		return KERN_INVALID_HOST;
9107 	}
9108 
9109 	if (recsp == NULL || numrecs == NULL) {
9110 		return KERN_INVALID_ARGUMENT;
9111 	}
9112 
9113 	zone_ptr = ZONE_NULL;
9114 	zone_foreach(z) {
9115 		/*
9116 		 * Append kalloc heap name to zone name (if zone is used by kalloc)
9117 		 */
9118 		char temp_zone_name[MAX_ZONE_NAME] = "";
9119 		snprintf(temp_zone_name, MAX_ZONE_NAME, "%s%s",
9120 		    zone_heap_name(z), z->z_name);
9121 
9122 		/* Find the requested zone by name */
9123 		if (track_this_zone(temp_zone_name, name.mzn_name)) {
9124 			zone_ptr = z;
9125 			break;
9126 		}
9127 	}
9128 
9129 	/* No zones found with the requested zone name */
9130 	if (zone_ptr == ZONE_NULL) {
9131 		return KERN_INVALID_ARGUMENT;
9132 	}
9133 
9134 	/* Logging not turned on for the requested zone */
9135 	if (!zone_ptr->z_btlog) {
9136 		return KERN_FAILURE;
9137 	}
9138 
9139 	kr = btlog_get_records(zone_ptr->z_btlog, &recs, numrecs);
9140 	if (kr != KERN_SUCCESS) {
9141 		return kr;
9142 	}
9143 
9144 	addr = (vm_address_t)recs;
9145 	size = sizeof(zone_btrecord_t) * *numrecs;
9146 
9147 	kr = vm_map_copyin(ipc_kernel_map, addr, size, TRUE, &copy);
9148 	assert(kr == KERN_SUCCESS);
9149 
9150 	*recsp = (zone_btrecord_t *)copy;
9151 	return KERN_SUCCESS;
9152 
9153 #else /* !ZALLOC_ENABLE_LOGGING */
9154 #pragma unused(host, name, recsp, numrecs)
9155 	return KERN_FAILURE;
9156 #endif /* !ZALLOC_ENABLE_LOGGING */
9157 }
9158 
9159 
9160 kern_return_t
mach_zone_force_gc(host_t host)9161 mach_zone_force_gc(
9162 	host_t host)
9163 {
9164 	if (host == HOST_NULL) {
9165 		return KERN_INVALID_HOST;
9166 	}
9167 
9168 #if DEBUG || DEVELOPMENT
9169 	extern boolean_t(*volatile consider_buffer_cache_collect)(int);
9170 	/* Callout to buffer cache GC to drop elements in the apfs zones */
9171 	if (consider_buffer_cache_collect != NULL) {
9172 		(void)(*consider_buffer_cache_collect)(0);
9173 	}
9174 	zone_gc(ZONE_GC_DRAIN);
9175 #endif /* DEBUG || DEVELOPMENT */
9176 	return KERN_SUCCESS;
9177 }
9178 
9179 zone_t
zone_find_largest(uint64_t * zone_size)9180 zone_find_largest(uint64_t *zone_size)
9181 {
9182 	zone_t    largest_zone  = 0;
9183 	uint64_t  largest_zone_size = 0;
9184 	zone_find_n_largest(1, &largest_zone, &largest_zone_size);
9185 	if (zone_size) {
9186 		*zone_size = largest_zone_size;
9187 	}
9188 	return largest_zone;
9189 }
9190 
9191 void
zone_get_stats(zone_t zone,struct zone_basic_stats * stats)9192 zone_get_stats(
9193 	zone_t                  zone,
9194 	struct zone_basic_stats *stats)
9195 {
9196 	stats->zbs_avail = zone->z_elems_avail;
9197 
9198 	stats->zbs_alloc_fail = 0;
9199 	zpercpu_foreach(zs, zone->z_stats) {
9200 		stats->zbs_alloc_fail += zs->zs_alloc_fail;
9201 	}
9202 
9203 	stats->zbs_cached = 0;
9204 	if (zone->z_pcpu_cache) {
9205 		zpercpu_foreach(zc, zone->z_pcpu_cache) {
9206 			stats->zbs_cached += zc->zc_alloc_cur +
9207 			    zc->zc_free_cur +
9208 			    zc->zc_depot.zd_full * zc_mag_size();
9209 		}
9210 	}
9211 
9212 	stats->zbs_free = zone_count_free(zone) + stats->zbs_cached;
9213 
9214 	/*
9215 	 * Since we don't take any locks, deal with possible inconsistencies
9216 	 * as the counters may have changed.
9217 	 */
9218 	if (os_sub_overflow(stats->zbs_avail, stats->zbs_free,
9219 	    &stats->zbs_alloc)) {
9220 		stats->zbs_avail = stats->zbs_free;
9221 		stats->zbs_alloc = 0;
9222 	}
9223 }
9224 
9225 #endif /* !ZALLOC_TEST */
9226 #pragma mark zone creation, configuration, destruction
9227 #if !ZALLOC_TEST
9228 
9229 static zone_t
zone_init_defaults(zone_id_t zid)9230 zone_init_defaults(zone_id_t zid)
9231 {
9232 	zone_t z = &zone_array[zid];
9233 
9234 	z->z_wired_max = ~0u;
9235 	z->collectable = true;
9236 
9237 	hw_lck_ticket_init(&z->z_lock, &zone_locks_grp);
9238 	hw_lck_ticket_init(&z->z_recirc_lock, &zone_locks_grp);
9239 	zone_depot_init(&z->z_recirc);
9240 	return z;
9241 }
9242 
9243 void
zone_set_exhaustible(zone_t zone,vm_size_t nelems,bool exhausts_by_design)9244 zone_set_exhaustible(zone_t zone, vm_size_t nelems, bool exhausts_by_design)
9245 {
9246 	zone_lock(zone);
9247 	zone->z_wired_max = zone_alloc_pages_for_nelems(zone, nelems);
9248 	zone->z_exhausts = exhausts_by_design;
9249 	zone_unlock(zone);
9250 }
9251 
9252 void
zone_raise_reserve(union zone_or_view zov,uint16_t min_elements)9253 zone_raise_reserve(union zone_or_view zov, uint16_t min_elements)
9254 {
9255 	zone_t zone = zov.zov_zone;
9256 
9257 	if (zone < zone_array || zone > &zone_array[MAX_ZONES]) {
9258 		zone = zov.zov_view->zv_zone;
9259 	} else {
9260 		zone = zov.zov_zone;
9261 	}
9262 
9263 	os_atomic_max(&zone->z_elems_rsv, min_elements, relaxed);
9264 }
9265 
9266 /**
9267  * @function zone_create_find
9268  *
9269  * @abstract
9270  * Finds an unused zone for the given name and element size.
9271  *
9272  * @param name          the zone name
9273  * @param size          the element size (including redzones, ...)
9274  * @param flags         the flags passed to @c zone_create*
9275  * @param zid_inout     the desired zone ID or ZONE_ID_ANY
9276  *
9277  * @returns             a zone to initialize further.
9278  */
9279 static zone_t
zone_create_find(const char * name,vm_size_t size,zone_create_flags_t flags,zone_id_t * zid_inout)9280 zone_create_find(
9281 	const char             *name,
9282 	vm_size_t               size,
9283 	zone_create_flags_t     flags,
9284 	zone_id_t              *zid_inout)
9285 {
9286 	zone_id_t nzones, zid = *zid_inout;
9287 	zone_t z;
9288 
9289 	simple_lock(&all_zones_lock, &zone_locks_grp);
9290 
9291 	nzones = (zone_id_t)os_atomic_load(&num_zones, relaxed);
9292 	assert(num_zones_in_use <= nzones && nzones < MAX_ZONES);
9293 
9294 	if (__improbable(nzones < ZONE_ID__FIRST_DYNAMIC)) {
9295 		/*
9296 		 * The first time around, make sure the reserved zone IDs
9297 		 * have an initialized lock as zone_index_foreach() will
9298 		 * enumerate them.
9299 		 */
9300 		while (nzones < ZONE_ID__FIRST_DYNAMIC) {
9301 			zone_init_defaults(nzones++);
9302 		}
9303 
9304 		os_atomic_store(&num_zones, nzones, release);
9305 	}
9306 
9307 	if (zid != ZONE_ID_ANY) {
9308 		if (zid >= ZONE_ID__FIRST_DYNAMIC) {
9309 			panic("zone_create: invalid desired zone ID %d for %s",
9310 			    zid, name);
9311 		}
9312 		if (flags & ZC_DESTRUCTIBLE) {
9313 			panic("zone_create: ID %d (%s) must be permanent", zid, name);
9314 		}
9315 		if (zone_array[zid].z_self) {
9316 			panic("zone_create: creating zone ID %d (%s) twice", zid, name);
9317 		}
9318 		z = &zone_array[zid];
9319 	} else {
9320 		if (flags & ZC_DESTRUCTIBLE) {
9321 			/*
9322 			 * If possible, find a previously zdestroy'ed zone in the
9323 			 * zone_array that we can reuse.
9324 			 */
9325 			for (int i = bitmap_first(zone_destroyed_bitmap, MAX_ZONES);
9326 			    i >= 0; i = bitmap_next(zone_destroyed_bitmap, i)) {
9327 				z = &zone_array[i];
9328 
9329 				/*
9330 				 * If the zone name and the element size are the
9331 				 * same, we can just reuse the old zone struct.
9332 				 */
9333 				if (strcmp(z->z_name, name) ||
9334 				    zone_elem_outer_size(z) != size) {
9335 					continue;
9336 				}
9337 				bitmap_clear(zone_destroyed_bitmap, i);
9338 				z->z_destroyed = false;
9339 				z->z_self = z;
9340 				zid = (zone_id_t)i;
9341 				goto out;
9342 			}
9343 		}
9344 
9345 		zid = nzones++;
9346 		z = zone_init_defaults(zid);
9347 
9348 		/*
9349 		 * The release barrier pairs with the acquire in
9350 		 * zone_index_foreach() and makes sure that enumeration loops
9351 		 * always see an initialized zone lock.
9352 		 */
9353 		os_atomic_store(&num_zones, nzones, release);
9354 	}
9355 
9356 out:
9357 	num_zones_in_use++;
9358 	simple_unlock(&all_zones_lock);
9359 
9360 	*zid_inout = zid;
9361 	return z;
9362 }
9363 
9364 __abortlike
9365 static void
zone_create_panic(const char * name,const char * f1,const char * f2)9366 zone_create_panic(const char *name, const char *f1, const char *f2)
9367 {
9368 	panic("zone_create: creating zone %s: flag %s and %s are incompatible",
9369 	    name, f1, f2);
9370 }
9371 #define zone_create_assert_not_both(name, flags, current_flag, forbidden_flag) \
9372 	if ((flags) & forbidden_flag) { \
9373 	        zone_create_panic(name, #current_flag, #forbidden_flag); \
9374 	}
9375 
9376 /*
9377  * Adjusts the size of the element based on minimum size, alignment
9378  * and kasan redzones
9379  */
9380 static vm_size_t
zone_elem_adjust_size(const char * name __unused,vm_size_t elem_size,zone_create_flags_t flags __unused,uint16_t * redzone __unused)9381 zone_elem_adjust_size(
9382 	const char             *name __unused,
9383 	vm_size_t               elem_size,
9384 	zone_create_flags_t     flags __unused,
9385 	uint16_t               *redzone __unused)
9386 {
9387 	vm_size_t size;
9388 
9389 	/*
9390 	 * Adjust element size for minimum size and pointer alignment
9391 	 */
9392 	size = (elem_size + ZONE_ALIGN_SIZE - 1) & -ZONE_ALIGN_SIZE;
9393 	if (size < ZONE_MIN_ELEM_SIZE) {
9394 		size = ZONE_MIN_ELEM_SIZE;
9395 	}
9396 
9397 #if KASAN_CLASSIC
9398 	/*
9399 	 * Expand the zone allocation size to include the redzones.
9400 	 *
9401 	 * For page-multiple zones add a full guard page because they
9402 	 * likely require alignment.
9403 	 */
9404 	uint16_t redzone_tmp;
9405 	if (flags & (ZC_KASAN_NOREDZONE | ZC_PERCPU | ZC_OBJ_CACHE)) {
9406 		redzone_tmp = 0;
9407 	} else if ((size & PAGE_MASK) == 0) {
9408 		if (size != PAGE_SIZE && (flags & ZC_ALIGNMENT_REQUIRED)) {
9409 			panic("zone_create: zone %s can't provide more than PAGE_SIZE"
9410 			    "alignment", name);
9411 		}
9412 		redzone_tmp = PAGE_SIZE;
9413 	} else if (flags & ZC_ALIGNMENT_REQUIRED) {
9414 		redzone_tmp = 0;
9415 	} else {
9416 		redzone_tmp = KASAN_GUARD_SIZE;
9417 	}
9418 	size += redzone_tmp;
9419 	if (redzone) {
9420 		*redzone = redzone_tmp;
9421 	}
9422 #endif
9423 	return size;
9424 }
9425 
9426 /*
9427  * Returns the allocation chunk size that has least framentation
9428  */
9429 static vm_size_t
zone_get_min_alloc_granule(vm_size_t elem_size,zone_create_flags_t flags)9430 zone_get_min_alloc_granule(
9431 	vm_size_t               elem_size,
9432 	zone_create_flags_t     flags)
9433 {
9434 	vm_size_t alloc_granule = PAGE_SIZE;
9435 	if (flags & ZC_PERCPU) {
9436 		alloc_granule = PAGE_SIZE * zpercpu_count();
9437 		if (PAGE_SIZE % elem_size > 256) {
9438 			panic("zone_create: per-cpu zone has too much fragmentation");
9439 		}
9440 	} else if (flags & ZC_READONLY) {
9441 		alloc_granule = PAGE_SIZE;
9442 	} else if ((elem_size & PAGE_MASK) == 0) {
9443 		/* zero fragmentation by definition */
9444 		alloc_granule = elem_size;
9445 	} else if (alloc_granule % elem_size == 0) {
9446 		/* zero fragmentation by definition */
9447 	} else {
9448 		vm_size_t frag = (alloc_granule % elem_size) * 100 / alloc_granule;
9449 		vm_size_t alloc_tmp = PAGE_SIZE;
9450 		vm_size_t max_chunk_size = ZONE_MAX_ALLOC_SIZE;
9451 
9452 #if __arm64__
9453 		/*
9454 		 * Increase chunk size to 48K for sizes larger than 4K on 16k
9455 		 * machines, so as to reduce internal fragementation for kalloc
9456 		 * zones with sizes 12K and 24K.
9457 		 */
9458 		if (elem_size > 4 * 1024 && PAGE_SIZE == 16 * 1024) {
9459 			max_chunk_size = 48 * 1024;
9460 		}
9461 #endif
9462 		while ((alloc_tmp += PAGE_SIZE) <= max_chunk_size) {
9463 			vm_size_t frag_tmp = (alloc_tmp % elem_size) * 100 / alloc_tmp;
9464 			if (frag_tmp < frag) {
9465 				frag = frag_tmp;
9466 				alloc_granule = alloc_tmp;
9467 			}
9468 		}
9469 	}
9470 	return alloc_granule;
9471 }
9472 
9473 vm_size_t
zone_get_early_alloc_size(const char * name __unused,vm_size_t elem_size,zone_create_flags_t flags,vm_size_t min_elems)9474 zone_get_early_alloc_size(
9475 	const char             *name __unused,
9476 	vm_size_t               elem_size,
9477 	zone_create_flags_t     flags,
9478 	vm_size_t               min_elems)
9479 {
9480 	vm_size_t adjusted_size, alloc_granule, chunk_elems;
9481 
9482 	adjusted_size = zone_elem_adjust_size(name, elem_size, flags, NULL);
9483 	alloc_granule = zone_get_min_alloc_granule(adjusted_size, flags);
9484 	chunk_elems   = alloc_granule / adjusted_size;
9485 
9486 	return ((min_elems + chunk_elems - 1) / chunk_elems) * alloc_granule;
9487 }
9488 
9489 zone_t
9490 zone_create_ext(
9491 	const char             *name,
9492 	vm_size_t               size,
9493 	zone_create_flags_t     flags,
9494 	zone_id_t               zid,
9495 	void                  (^extra_setup)(zone_t))
9496 {
9497 	zone_security_flags_t *zsflags;
9498 	uint16_t redzone;
9499 	zone_t z;
9500 
9501 	if (size > ZONE_MAX_ALLOC_SIZE) {
9502 		panic("zone_create: element size too large: %zd", (size_t)size);
9503 	}
9504 
9505 	if (size < 2 * sizeof(vm_size_t)) {
9506 		/* Elements are too small for kasan. */
9507 		flags |= ZC_KASAN_NOQUARANTINE | ZC_KASAN_NOREDZONE;
9508 	}
9509 
9510 	size = zone_elem_adjust_size(name, size, flags, &redzone);
9511 
9512 	/*
9513 	 * Allocate the zone slot, return early if we found an older match.
9514 	 */
9515 	z = zone_create_find(name, size, flags, &zid);
9516 	if (__improbable(z->z_self)) {
9517 		/* We found a zone to reuse */
9518 		return z;
9519 	}
9520 	zsflags = &zone_security_array[zid];
9521 
9522 	/*
9523 	 * Initialize the zone properly.
9524 	 */
9525 
9526 	/*
9527 	 * If the kernel is post lockdown, copy the zone name passed in.
9528 	 * Else simply maintain a pointer to the name string as it can only
9529 	 * be a core XNU zone (no unloadable kext exists before lockdown).
9530 	 */
9531 	if (startup_phase >= STARTUP_SUB_LOCKDOWN) {
9532 		size_t nsz = MIN(strlen(name) + 1, MACH_ZONE_NAME_MAX_LEN);
9533 		char *buf = zalloc_permanent(nsz, ZALIGN_NONE);
9534 		strlcpy(buf, name, nsz);
9535 		z->z_name = buf;
9536 	} else {
9537 		z->z_name = name;
9538 	}
9539 	if (__probable(zone_array[ZONE_ID_PERCPU_PERMANENT].z_self)) {
9540 		z->z_stats = zalloc_percpu_permanent_type(struct zone_stats);
9541 	} else {
9542 		/*
9543 		 * zone_init() hasn't run yet, use the storage provided by
9544 		 * zone_stats_startup(), and zone_init() will replace it
9545 		 * with the final value once the PERCPU zone exists.
9546 		 */
9547 		z->z_stats = __zpcpu_mangle_for_boot(&zone_stats_startup[zone_index(z)]);
9548 	}
9549 
9550 	if (flags & ZC_OBJ_CACHE) {
9551 		zone_create_assert_not_both(name, flags, ZC_OBJ_CACHE, ZC_NOCACHING);
9552 		zone_create_assert_not_both(name, flags, ZC_OBJ_CACHE, ZC_PERCPU);
9553 		zone_create_assert_not_both(name, flags, ZC_OBJ_CACHE, ZC_NOGC);
9554 		zone_create_assert_not_both(name, flags, ZC_OBJ_CACHE, ZC_DESTRUCTIBLE);
9555 
9556 		z->z_elem_size   = (uint16_t)size;
9557 		z->z_chunk_pages = 0;
9558 		z->z_quo_magic   = 0;
9559 		z->z_align_magic = 0;
9560 		z->z_chunk_elems = 0;
9561 		z->z_elem_offs   = 0;
9562 		z->no_callout    = true;
9563 		zsflags->z_lifo  = true;
9564 	} else {
9565 		vm_size_t alloc = zone_get_min_alloc_granule(size, flags);
9566 
9567 		z->z_elem_size   = (uint16_t)(size - redzone);
9568 		z->z_chunk_pages = (uint16_t)atop(alloc);
9569 		z->z_quo_magic   = Z_MAGIC_QUO(size);
9570 		z->z_align_magic = Z_MAGIC_ALIGNED(size);
9571 		if (flags & ZC_PERCPU) {
9572 			z->z_chunk_elems = (uint16_t)(PAGE_SIZE / size);
9573 			z->z_elem_offs = (uint16_t)(PAGE_SIZE % size) + redzone;
9574 		} else {
9575 			z->z_chunk_elems = (uint16_t)(alloc / size);
9576 			z->z_elem_offs = (uint16_t)(alloc % size) + redzone;
9577 		}
9578 	}
9579 
9580 	/*
9581 	 * Handle KPI flags
9582 	 */
9583 
9584 	/* ZC_CACHING applied after all configuration is done */
9585 	if (flags & ZC_NOCACHING) {
9586 		z->z_nocaching = true;
9587 	}
9588 
9589 	if (flags & ZC_READONLY) {
9590 		zone_create_assert_not_both(name, flags, ZC_READONLY, ZC_VM);
9591 		zone_create_assert_not_both(name, flags, ZC_READONLY, ZC_DATA);
9592 		assert(zid <= ZONE_ID__LAST_RO);
9593 #if ZSECURITY_CONFIG(READ_ONLY)
9594 		zsflags->z_submap_idx = Z_SUBMAP_IDX_READ_ONLY;
9595 #endif
9596 		zone_ro_size_params[zid].z_elem_size = z->z_elem_size;
9597 		zone_ro_size_params[zid].z_align_magic = z->z_align_magic;
9598 		assert(size <= PAGE_SIZE);
9599 		if ((PAGE_SIZE % size) * 10 >= PAGE_SIZE) {
9600 			panic("Fragmentation greater than 10%% with elem size %d zone %s%s",
9601 			    (uint32_t)size, zone_heap_name(z), z->z_name);
9602 		}
9603 	}
9604 
9605 	if (flags & ZC_PERCPU) {
9606 		zone_create_assert_not_both(name, flags, ZC_PERCPU, ZC_READONLY);
9607 		zone_create_assert_not_both(name, flags, ZC_PERCPU, ZC_PGZ_USE_GUARDS);
9608 		z->z_percpu = true;
9609 	}
9610 	if (flags & ZC_NOGC) {
9611 		z->collectable = false;
9612 	}
9613 	/*
9614 	 * Handle ZC_NOENCRYPT from xnu only
9615 	 */
9616 	if (startup_phase < STARTUP_SUB_LOCKDOWN && flags & ZC_NOENCRYPT) {
9617 		zsflags->z_noencrypt = true;
9618 	}
9619 	if (flags & ZC_NOCALLOUT) {
9620 		z->no_callout = true;
9621 	}
9622 	if (flags & ZC_DESTRUCTIBLE) {
9623 		zone_create_assert_not_both(name, flags, ZC_DESTRUCTIBLE, ZC_READONLY);
9624 		z->z_destructible = true;
9625 	}
9626 	/*
9627 	 * Handle Internal flags
9628 	 */
9629 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
9630 	if (flags & ZC_PGZ_USE_GUARDS) {
9631 		/*
9632 		 * Try to turn on guard pages only for zones
9633 		 * with a chance of OOB.
9634 		 */
9635 		if (startup_phase < STARTUP_SUB_LOCKDOWN) {
9636 			zsflags->z_pgz_use_guards = true;
9637 		}
9638 		z->z_pgz_use_guards = true;
9639 	}
9640 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) */
9641 
9642 #if ZSECURITY_CONFIG(ZONE_TAGGING)
9643 	if ((flags & ZC_NO_TBI_TAG)) {
9644 		zsflags->z_tag = false;
9645 	}
9646 
9647 #endif /* ZSECURITY_CONFIG(ZONE_TAGGING) */
9648 
9649 	if (flags & ZC_KALLOC_TYPE) {
9650 		zsflags->z_kalloc_type = true;
9651 	}
9652 	if (flags & ZC_VM) {
9653 		zone_create_assert_not_both(name, flags, ZC_VM, ZC_DATA);
9654 		zsflags->z_submap_idx = Z_SUBMAP_IDX_VM;
9655 	}
9656 	if (flags & ZC_DATA) {
9657 		zsflags->z_kheap_id = KHEAP_ID_DATA_BUFFERS;
9658 	}
9659 #if KASAN_CLASSIC
9660 	if (redzone && !(flags & ZC_KASAN_NOQUARANTINE)) {
9661 		z->z_kasan_quarantine = true;
9662 	}
9663 	z->z_kasan_redzone = redzone;
9664 #endif /* KASAN_CLASSIC */
9665 #if KASAN_FAKESTACK
9666 	if (strncmp(name, "fakestack.", sizeof("fakestack.") - 1) == 0) {
9667 		z->z_kasan_fakestacks = true;
9668 	}
9669 #endif /* KASAN_FAKESTACK */
9670 
9671 	/*
9672 	 * Then if there's extra tuning, do it
9673 	 */
9674 	if (extra_setup) {
9675 		extra_setup(z);
9676 	}
9677 
9678 	/*
9679 	 * Configure debugging features
9680 	 */
9681 #if CONFIG_PROB_GZALLOC
9682 	if ((flags & (ZC_READONLY | ZC_PERCPU | ZC_OBJ_CACHE | ZC_NOPGZ)) == 0) {
9683 		pgz_zone_init(z);
9684 	}
9685 #endif
9686 	if (zc_magazine_zone) { /* proxy for "has zone_init run" */
9687 #if ZALLOC_ENABLE_LOGGING
9688 		/*
9689 		 * Check for and set up zone leak detection
9690 		 * if requested via boot-args.
9691 		 */
9692 		zone_setup_logging(z);
9693 #endif /* ZALLOC_ENABLE_LOGGING */
9694 #if KASAN_TBI
9695 		zone_setup_kasan_logging(z);
9696 #endif /* KASAN_TBI */
9697 	}
9698 
9699 #if VM_TAG_SIZECLASSES
9700 	if ((zsflags->z_kheap_id || zsflags->z_kalloc_type) && zone_tagging_on) {
9701 		static uint16_t sizeclass_idx;
9702 
9703 		assert(startup_phase < STARTUP_SUB_LOCKDOWN);
9704 		z->z_uses_tags = true;
9705 		if (zsflags->z_kheap_id == KHEAP_ID_DATA_BUFFERS) {
9706 			zone_tags_sizeclasses[sizeclass_idx] = (uint16_t)size;
9707 			z->z_tags_sizeclass = sizeclass_idx++;
9708 		} else {
9709 			uint16_t i = 0;
9710 			for (; i < sizeclass_idx; i++) {
9711 				if (size == zone_tags_sizeclasses[i]) {
9712 					z->z_tags_sizeclass = i;
9713 					break;
9714 				}
9715 			}
9716 
9717 			/*
9718 			 * Size class wasn't found, add it to zone_tags_sizeclasses
9719 			 */
9720 			if (i == sizeclass_idx) {
9721 				assert(i < VM_TAG_SIZECLASSES);
9722 				zone_tags_sizeclasses[i] = (uint16_t)size;
9723 				z->z_tags_sizeclass = sizeclass_idx++;
9724 			}
9725 		}
9726 		assert(z->z_tags_sizeclass < VM_TAG_SIZECLASSES);
9727 	}
9728 #endif
9729 
9730 	/*
9731 	 * Finally, fixup properties based on security policies, boot-args, ...
9732 	 */
9733 	if (zsflags->z_kheap_id == KHEAP_ID_DATA_BUFFERS) {
9734 		/*
9735 		 * We use LIFO in the data map, because workloads like network
9736 		 * usage or similar tend to rotate through allocations very
9737 		 * quickly with sometimes epxloding working-sets and using
9738 		 * a FIFO policy might cause massive TLB trashing with rather
9739 		 * dramatic performance impacts.
9740 		 */
9741 		zsflags->z_submap_idx = Z_SUBMAP_IDX_DATA;
9742 		zsflags->z_lifo = true;
9743 	}
9744 
9745 	if ((flags & (ZC_CACHING | ZC_OBJ_CACHE)) && !z->z_nocaching) {
9746 		/*
9747 		 * No zone made before zone_init() can have ZC_CACHING set.
9748 		 */
9749 		assert(zc_magazine_zone);
9750 		zone_enable_caching(z);
9751 	}
9752 
9753 	zone_lock(z);
9754 	z->z_self = z;
9755 	zone_unlock(z);
9756 
9757 	return z;
9758 }
9759 
9760 void
zone_set_sig_eq(zone_t zone,zone_id_t sig_eq)9761 zone_set_sig_eq(zone_t zone, zone_id_t sig_eq)
9762 {
9763 	zone_security_array[zone_index(zone)].z_sig_eq = sig_eq;
9764 }
9765 
9766 zone_id_t
zone_get_sig_eq(zone_t zone)9767 zone_get_sig_eq(zone_t zone)
9768 {
9769 	return zone_security_array[zone_index(zone)].z_sig_eq;
9770 }
9771 
9772 void
zone_enable_smr(zone_t zone,struct smr * smr,zone_smr_free_cb_t free_cb)9773 zone_enable_smr(zone_t zone, struct smr *smr, zone_smr_free_cb_t free_cb)
9774 {
9775 	/* moving to SMR must be done before the zone has ever been used */
9776 	assert(zone->z_va_cur == 0 && !zone->z_smr && !zone->z_nocaching);
9777 	assert(!zone_security_array[zone_index(zone)].z_lifo);
9778 	assert((smr->smr_flags & SMR_SLEEPABLE) == 0);
9779 
9780 	if (!zone->z_pcpu_cache) {
9781 		zone_enable_caching(zone);
9782 	}
9783 
9784 	zone_lock(zone);
9785 
9786 	zpercpu_foreach(it, zone->z_pcpu_cache) {
9787 		it->zc_smr = smr;
9788 		it->zc_free = free_cb;
9789 	}
9790 	zone->z_smr = true;
9791 
9792 	zone_unlock(zone);
9793 }
9794 
9795 __startup_func
9796 void
zone_create_startup(struct zone_create_startup_spec * spec)9797 zone_create_startup(struct zone_create_startup_spec *spec)
9798 {
9799 	zone_t z;
9800 
9801 	z = zone_create_ext(spec->z_name, spec->z_size,
9802 	    spec->z_flags, spec->z_zid, spec->z_setup);
9803 	if (spec->z_var) {
9804 		*spec->z_var = z;
9805 	}
9806 }
9807 
9808 /*
9809  * The 4 first field of a zone_view and a zone alias, so that the zone_or_view_t
9810  * union works. trust but verify.
9811  */
9812 #define zalloc_check_zov_alias(f1, f2) \
9813     static_assert(offsetof(struct zone, f1) == offsetof(struct zone_view, f2))
9814 zalloc_check_zov_alias(z_self, zv_zone);
9815 zalloc_check_zov_alias(z_stats, zv_stats);
9816 zalloc_check_zov_alias(z_name, zv_name);
9817 zalloc_check_zov_alias(z_views, zv_next);
9818 #undef zalloc_check_zov_alias
9819 
9820 __startup_func
9821 void
zone_view_startup_init(struct zone_view_startup_spec * spec)9822 zone_view_startup_init(struct zone_view_startup_spec *spec)
9823 {
9824 	struct kalloc_heap *heap = NULL;
9825 	zone_view_t zv = spec->zv_view;
9826 	zone_t z;
9827 	zone_security_flags_t zsflags;
9828 
9829 	switch (spec->zv_heapid) {
9830 	case KHEAP_ID_DATA_BUFFERS:
9831 		heap = KHEAP_DATA_BUFFERS;
9832 		break;
9833 	default:
9834 		heap = NULL;
9835 	}
9836 
9837 	if (heap) {
9838 		z = kalloc_zone_for_size(heap->kh_zstart, spec->zv_size);
9839 	} else {
9840 		z = *spec->zv_zone;
9841 		assert(spec->zv_size <= zone_elem_inner_size(z));
9842 	}
9843 
9844 	assert(z);
9845 
9846 	zv->zv_zone  = z;
9847 	zv->zv_stats = zalloc_percpu_permanent_type(struct zone_stats);
9848 	zv->zv_next  = z->z_views;
9849 	zsflags = zone_security_config(z);
9850 	if (z->z_views == NULL && zsflags.z_kheap_id == KHEAP_ID_NONE) {
9851 		/*
9852 		 * count the raw view for zones not in a heap,
9853 		 * kalloc_heap_init() already counts it for its members.
9854 		 */
9855 		zone_view_count += 2;
9856 	} else {
9857 		zone_view_count += 1;
9858 	}
9859 	z->z_views = zv;
9860 }
9861 
9862 zone_t
zone_create(const char * name,vm_size_t size,zone_create_flags_t flags)9863 zone_create(
9864 	const char             *name,
9865 	vm_size_t               size,
9866 	zone_create_flags_t     flags)
9867 {
9868 	return zone_create_ext(name, size, flags, ZONE_ID_ANY, NULL);
9869 }
9870 
9871 vm_size_t
zone_get_elem_size(zone_t zone)9872 zone_get_elem_size(zone_t zone)
9873 {
9874 	return zone->z_elem_size;
9875 }
9876 
9877 static_assert(ZONE_ID__LAST_RO_EXT - ZONE_ID__FIRST_RO_EXT == ZC_RO_ID__LAST);
9878 
9879 zone_id_t
zone_create_ro(const char * name,vm_size_t size,zone_create_flags_t flags,zone_create_ro_id_t zc_ro_id)9880 zone_create_ro(
9881 	const char             *name,
9882 	vm_size_t               size,
9883 	zone_create_flags_t     flags,
9884 	zone_create_ro_id_t     zc_ro_id)
9885 {
9886 	assert(zc_ro_id <= ZC_RO_ID__LAST);
9887 	zone_id_t reserved_zid = ZONE_ID__FIRST_RO_EXT + zc_ro_id;
9888 	(void)zone_create_ext(name, size, ZC_READONLY | flags, reserved_zid, NULL);
9889 	return reserved_zid;
9890 }
9891 
9892 zone_t
zinit(vm_size_t size,vm_size_t max __unused,vm_size_t alloc __unused,const char * name)9893 zinit(
9894 	vm_size_t       size,           /* the size of an element */
9895 	vm_size_t       max __unused,   /* maximum memory to use */
9896 	vm_size_t       alloc __unused, /* allocation size */
9897 	const char      *name)          /* a name for the zone */
9898 {
9899 	return zone_create(name, size, ZC_DESTRUCTIBLE);
9900 }
9901 
9902 void
zdestroy(zone_t z)9903 zdestroy(zone_t z)
9904 {
9905 	unsigned int zindex = zone_index(z);
9906 	zone_security_flags_t zsflags = zone_security_array[zindex];
9907 
9908 	current_thread()->options |= TH_OPT_ZONE_PRIV;
9909 	lck_mtx_lock(&zone_gc_lock);
9910 
9911 	zone_reclaim(z, ZONE_RECLAIM_DESTROY);
9912 
9913 	lck_mtx_unlock(&zone_gc_lock);
9914 	current_thread()->options &= ~TH_OPT_ZONE_PRIV;
9915 
9916 	zone_lock(z);
9917 
9918 	if (!zone_submap_is_sequestered(zsflags)) {
9919 		while (!zone_pva_is_null(z->z_pageq_va)) {
9920 			struct zone_page_metadata *meta;
9921 
9922 			zone_counter_sub(z, z_va_cur, z->z_percpu ? 1 : z->z_chunk_pages);
9923 			meta = zone_meta_queue_pop(z, &z->z_pageq_va);
9924 			assert(meta->zm_chunk_len <= ZM_CHUNK_LEN_MAX);
9925 			bzero(meta, sizeof(*meta) * z->z_chunk_pages);
9926 			zone_unlock(z);
9927 			kmem_free(zone_submap(zsflags), zone_meta_to_addr(meta),
9928 			    ptoa(z->z_chunk_pages));
9929 			zone_lock(z);
9930 		}
9931 	}
9932 
9933 #if !KASAN_CLASSIC
9934 	/* Assert that all counts are zero */
9935 	if (z->z_elems_avail || z->z_elems_free || zone_size_wired(z) ||
9936 	    (z->z_va_cur && !zone_submap_is_sequestered(zsflags))) {
9937 		panic("zdestroy: Zone %s%s isn't empty at zdestroy() time",
9938 		    zone_heap_name(z), z->z_name);
9939 	}
9940 
9941 	/* consistency check: make sure everything is indeed empty */
9942 	assert(zone_pva_is_null(z->z_pageq_empty));
9943 	assert(zone_pva_is_null(z->z_pageq_partial));
9944 	assert(zone_pva_is_null(z->z_pageq_full));
9945 	if (!zone_submap_is_sequestered(zsflags)) {
9946 		assert(zone_pva_is_null(z->z_pageq_va));
9947 	}
9948 #endif
9949 
9950 	zone_unlock(z);
9951 
9952 	simple_lock(&all_zones_lock, &zone_locks_grp);
9953 
9954 	assert(!bitmap_test(zone_destroyed_bitmap, zindex));
9955 	/* Mark the zone as empty in the bitmap */
9956 	bitmap_set(zone_destroyed_bitmap, zindex);
9957 	num_zones_in_use--;
9958 	assert(num_zones_in_use > 0);
9959 
9960 	simple_unlock(&all_zones_lock);
9961 }
9962 
9963 #endif /* !ZALLOC_TEST */
9964 #pragma mark zalloc module init
9965 #if !ZALLOC_TEST
9966 
9967 /*
9968  *	Initialize the "zone of zones" which uses fixed memory allocated
9969  *	earlier in memory initialization.  zone_bootstrap is called
9970  *	before zone_init.
9971  */
9972 __startup_func
9973 void
zone_bootstrap(void)9974 zone_bootstrap(void)
9975 {
9976 #if DEBUG || DEVELOPMENT
9977 #if __x86_64__
9978 	if (PE_parse_boot_argn("kernPOST", NULL, 0)) {
9979 		/*
9980 		 * rdar://79781535 Disable early gaps while running kernPOST on Intel
9981 		 * the fp faulting code gets triggered and deadlocks.
9982 		 */
9983 		zone_caching_disabled = 1;
9984 	}
9985 #endif /* __x86_64__ */
9986 #endif /* DEBUG || DEVELOPMENT */
9987 
9988 	/* Validate struct zone_packed_virtual_address expectations */
9989 	static_assert((intptr_t)VM_MIN_KERNEL_ADDRESS < 0, "the top bit must be 1");
9990 	if (VM_KERNEL_POINTER_SIGNIFICANT_BITS - PAGE_SHIFT > 31) {
9991 		panic("zone_pva_t can't pack a kernel page address in 31 bits");
9992 	}
9993 
9994 	zpercpu_early_count = ml_early_cpu_max_number() + 1;
9995 	if (!PE_parse_boot_argn("zc_mag_size", NULL, 0)) {
9996 		/*
9997 		 * Scale zc_mag_size() per machine.
9998 		 *
9999 		 * - wide machines get 128B magazines to avoid all false sharing
10000 		 * - smaller machines but with enough RAM get a bit bigger
10001 		 *   buckets (empirically affects networking performance)
10002 		 */
10003 		if (zpercpu_early_count >= 10) {
10004 			_zc_mag_size = 14;
10005 		} else if ((sane_size >> 30) >= 4) {
10006 			_zc_mag_size = 10;
10007 		}
10008 	}
10009 
10010 	/*
10011 	 * Initialize random used to scramble early allocations
10012 	 */
10013 	zpercpu_foreach_cpu(cpu) {
10014 		random_bool_init(&zone_bool_gen[cpu].zbg_bg);
10015 	}
10016 
10017 #if CONFIG_PROB_GZALLOC
10018 	/*
10019 	 * Set pgz_sample_counter on the boot CPU so that we do not sample
10020 	 * any allocation until PGZ has been properly setup (in pgz_init()).
10021 	 */
10022 	*PERCPU_GET_MASTER(pgz_sample_counter) = INT32_MAX;
10023 #endif /* CONFIG_PROB_GZALLOC */
10024 
10025 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
10026 	/*
10027 	 * Randomly assign zones to one of the 4 general submaps,
10028 	 * and pick whether they allocate from the begining
10029 	 * or the end of it.
10030 	 *
10031 	 * A lot of OOB exploitation relies on precise interleaving
10032 	 * of specific types in the heap.
10033 	 *
10034 	 * Woops, you can't guarantee that anymore.
10035 	 */
10036 	for (zone_id_t i = 1; i < MAX_ZONES; i++) {
10037 		uint32_t r = zalloc_random_uniform32(0,
10038 		    ZSECURITY_CONFIG_GENERAL_SUBMAPS * 2);
10039 
10040 		zone_security_array[i].z_submap_from_end = (r & 1);
10041 		zone_security_array[i].z_submap_idx += (r >> 1);
10042 	}
10043 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) */
10044 
10045 
10046 	thread_call_setup_with_options(&zone_expand_callout,
10047 	    zone_expand_async, NULL, THREAD_CALL_PRIORITY_HIGH,
10048 	    THREAD_CALL_OPTIONS_ONCE);
10049 
10050 	thread_call_setup_with_options(&zone_trim_callout,
10051 	    zone_trim_async, NULL, THREAD_CALL_PRIORITY_USER,
10052 	    THREAD_CALL_OPTIONS_ONCE);
10053 }
10054 
10055 #define ZONE_GUARD_SIZE                 (64UL << 10)
10056 
10057 __startup_func
10058 static void
zone_tunables_fixup(void)10059 zone_tunables_fixup(void)
10060 {
10061 	int wdt = 0;
10062 
10063 #if CONFIG_PROB_GZALLOC && (DEVELOPMENT || DEBUG)
10064 	if (!PE_parse_boot_argn("pgz", NULL, 0) &&
10065 	    PE_parse_boot_argn("pgz1", NULL, 0)) {
10066 		/*
10067 		 * if pgz1= was used, but pgz= was not,
10068 		 * then the more specific pgz1 takes precedence.
10069 		 */
10070 		pgz_all = false;
10071 	}
10072 #endif
10073 
10074 	if (zone_map_jetsam_limit == 0 || zone_map_jetsam_limit > 100) {
10075 		zone_map_jetsam_limit = ZONE_MAP_JETSAM_LIMIT_DEFAULT;
10076 	}
10077 	if (PE_parse_boot_argn("wdt", &wdt, sizeof(wdt)) && wdt == -1 &&
10078 	    !PE_parse_boot_argn("zet", NULL, 0)) {
10079 		zone_exhausted_timeout = -1;
10080 	}
10081 }
10082 STARTUP(TUNABLES, STARTUP_RANK_MIDDLE, zone_tunables_fixup);
10083 
10084 __startup_func
10085 static void
zone_submap_init(mach_vm_offset_t * submap_min,zone_submap_idx_t idx,uint64_t zone_sub_map_numer,uint64_t * remaining_denom,vm_offset_t * remaining_size)10086 zone_submap_init(
10087 	mach_vm_offset_t       *submap_min,
10088 	zone_submap_idx_t       idx,
10089 	uint64_t                zone_sub_map_numer,
10090 	uint64_t               *remaining_denom,
10091 	vm_offset_t            *remaining_size)
10092 {
10093 	vm_map_create_options_t vmco;
10094 	vm_map_address_t addr;
10095 	vm_offset_t submap_start, submap_end;
10096 	vm_size_t submap_size;
10097 	vm_map_t  submap;
10098 	vm_prot_t prot = VM_PROT_DEFAULT;
10099 	vm_prot_t prot_max = VM_PROT_ALL;
10100 	kern_return_t kr;
10101 
10102 	submap_size = trunc_page(zone_sub_map_numer * *remaining_size /
10103 	    *remaining_denom);
10104 	submap_start = *submap_min;
10105 
10106 	if (idx == Z_SUBMAP_IDX_READ_ONLY) {
10107 		vm_offset_t submap_padding = pmap_ro_zone_align(submap_start) - submap_start;
10108 		submap_start += submap_padding;
10109 		submap_size = pmap_ro_zone_align(submap_size);
10110 		assert(*remaining_size >= (submap_padding + submap_size));
10111 		*remaining_size -= submap_padding;
10112 		*submap_min = submap_start;
10113 	}
10114 
10115 	submap_end = submap_start + submap_size;
10116 	if (idx == Z_SUBMAP_IDX_VM) {
10117 		vm_packing_verify_range("vm_compressor",
10118 		    submap_start, submap_end, VM_PACKING_PARAMS(C_SLOT_PACKED_PTR));
10119 		vm_packing_verify_range("vm_page",
10120 		    submap_start, submap_end, VM_PACKING_PARAMS(VM_PAGE_PACKED_PTR));
10121 	}
10122 
10123 	vmco = VM_MAP_CREATE_NEVER_FAULTS;
10124 	if (!zone_submap_is_sequestered(idx)) {
10125 		vmco |= VM_MAP_CREATE_DISABLE_HOLELIST;
10126 	}
10127 
10128 	vm_map_will_allocate_early_map(&zone_submaps[idx]);
10129 	submap = kmem_suballoc(kernel_map, submap_min, submap_size, vmco,
10130 	    VM_FLAGS_FIXED | VM_FLAGS_OVERWRITE, KMS_PERMANENT | KMS_NOFAIL,
10131 	    VM_KERN_MEMORY_ZONE).kmr_submap;
10132 
10133 	if (idx == Z_SUBMAP_IDX_READ_ONLY) {
10134 		zone_info.zi_ro_range.min_address = submap_start;
10135 		zone_info.zi_ro_range.max_address = submap_end;
10136 		prot_max = prot = VM_PROT_NONE;
10137 	}
10138 
10139 	addr = submap_start;
10140 	vm_map_kernel_flags_t vmk_flags = VM_MAP_KERNEL_FLAGS_FIXED_PERMANENT(
10141 		.vm_tag = VM_KERN_MEMORY_ZONE);
10142 	vm_object_t kobject = kernel_object_default;
10143 	kr = vm_map_enter(submap, &addr, ZONE_GUARD_SIZE / 2, 0,
10144 	    vmk_flags, kobject, addr, FALSE, prot, prot_max, VM_INHERIT_NONE);
10145 	if (kr != KERN_SUCCESS) {
10146 		panic("ksubmap[%s]: failed to make first entry (%d)",
10147 		    zone_submaps_names[idx], kr);
10148 	}
10149 
10150 	addr = submap_end - ZONE_GUARD_SIZE / 2;
10151 	kr = vm_map_enter(submap, &addr, ZONE_GUARD_SIZE / 2, 0,
10152 	    vmk_flags, kobject, addr, FALSE, prot, prot_max, VM_INHERIT_NONE);
10153 	if (kr != KERN_SUCCESS) {
10154 		panic("ksubmap[%s]: failed to make last entry (%d)",
10155 		    zone_submaps_names[idx], kr);
10156 	}
10157 
10158 #if DEBUG || DEVELOPMENT
10159 	printf("zone_init: map %-5s %p:%p (%u%c)\n",
10160 	    zone_submaps_names[idx], (void *)submap_start, (void *)submap_end,
10161 	    mach_vm_size_pretty(submap_size), mach_vm_size_unit(submap_size));
10162 #endif /* DEBUG || DEVELOPMENT */
10163 
10164 	zone_submaps[idx] = submap;
10165 	*submap_min       = submap_end;
10166 	*remaining_size  -= submap_size;
10167 	*remaining_denom -= zone_sub_map_numer;
10168 }
10169 
10170 static inline void
zone_pva_relocate(zone_pva_t * pva,uint32_t delta)10171 zone_pva_relocate(zone_pva_t *pva, uint32_t delta)
10172 {
10173 	if (!zone_pva_is_null(*pva) && !zone_pva_is_queue(*pva)) {
10174 		pva->packed_address += delta;
10175 	}
10176 }
10177 
10178 /*
10179  * Allocate metadata array and migrate bootstrap initial metadata and memory.
10180  */
10181 __startup_func
10182 static void
zone_metadata_init(void)10183 zone_metadata_init(void)
10184 {
10185 	vm_map_t vm_map = zone_submaps[Z_SUBMAP_IDX_VM];
10186 	vm_map_entry_t first;
10187 
10188 	struct mach_vm_range meta_r, bits_r, xtra_r, early_r;
10189 	vm_size_t early_sz;
10190 	vm_offset_t reloc_base;
10191 
10192 	/*
10193 	 * Step 1: Allocate the metadata + bitmaps range
10194 	 *
10195 	 * Allocations can't be smaller than 8 bytes, which is 128b / 16B per 1k
10196 	 * of physical memory (16M per 1G).
10197 	 *
10198 	 * Let's preallocate for the worst to avoid weird panics.
10199 	 */
10200 	vm_map_will_allocate_early_map(&zone_meta_map);
10201 	meta_r = zone_kmem_suballoc(zone_info.zi_meta_range.min_address,
10202 	    zone_meta_size + zone_bits_size + zone_xtra_size,
10203 	    VM_FLAGS_FIXED | VM_FLAGS_OVERWRITE,
10204 	    VM_KERN_MEMORY_ZONE, &zone_meta_map);
10205 	meta_r.min_address += ZONE_GUARD_SIZE;
10206 	meta_r.max_address -= ZONE_GUARD_SIZE;
10207 	if (zone_xtra_size) {
10208 		xtra_r.max_address  = meta_r.max_address;
10209 		meta_r.max_address -= zone_xtra_size;
10210 		xtra_r.min_address  = meta_r.max_address;
10211 	} else {
10212 		xtra_r.min_address  = xtra_r.max_address = 0;
10213 	}
10214 	bits_r.max_address  = meta_r.max_address;
10215 	meta_r.max_address -= zone_bits_size;
10216 	bits_r.min_address  = meta_r.max_address;
10217 
10218 #if DEBUG || DEVELOPMENT
10219 	printf("zone_init: metadata  %p:%p (%u%c)\n",
10220 	    (void *)meta_r.min_address, (void *)meta_r.max_address,
10221 	    mach_vm_size_pretty(mach_vm_range_size(&meta_r)),
10222 	    mach_vm_size_unit(mach_vm_range_size(&meta_r)));
10223 	printf("zone_init: metabits  %p:%p (%u%c)\n",
10224 	    (void *)bits_r.min_address, (void *)bits_r.max_address,
10225 	    mach_vm_size_pretty(mach_vm_range_size(&bits_r)),
10226 	    mach_vm_size_unit(mach_vm_range_size(&bits_r)));
10227 	printf("zone_init: extra     %p:%p (%u%c)\n",
10228 	    (void *)xtra_r.min_address, (void *)xtra_r.max_address,
10229 	    mach_vm_size_pretty(mach_vm_range_size(&xtra_r)),
10230 	    mach_vm_size_unit(mach_vm_range_size(&xtra_r)));
10231 #endif /* DEBUG || DEVELOPMENT */
10232 
10233 	bits_r.min_address = (bits_r.min_address + ZBA_CHUNK_SIZE - 1) & -ZBA_CHUNK_SIZE;
10234 	bits_r.max_address = bits_r.max_address & -ZBA_CHUNK_SIZE;
10235 
10236 	/*
10237 	 * Step 2: Install new ranges.
10238 	 *         Relocate metadata and bits.
10239 	 */
10240 	early_r  = zone_info.zi_map_range;
10241 	early_sz = mach_vm_range_size(&early_r);
10242 
10243 	zone_info.zi_map_range  = zone_map_range;
10244 	zone_info.zi_meta_range = meta_r;
10245 	zone_info.zi_bits_range = bits_r;
10246 	zone_info.zi_xtra_range = xtra_r;
10247 	zone_info.zi_meta_base  = (struct zone_page_metadata *)meta_r.min_address -
10248 	    zone_pva_from_addr(zone_map_range.min_address).packed_address;
10249 
10250 	vm_map_lock(vm_map);
10251 	first = vm_map_first_entry(vm_map);
10252 	reloc_base = first->vme_end;
10253 	first->vme_end += early_sz;
10254 	vm_map->size += early_sz;
10255 	vm_map_unlock(vm_map);
10256 
10257 	struct zone_page_metadata *early_meta = zone_early_meta_array_startup;
10258 	struct zone_page_metadata *new_meta = zone_meta_from_addr(reloc_base);
10259 	vm_offset_t reloc_delta = reloc_base - early_r.min_address;
10260 	/* this needs to sign extend */
10261 	uint32_t pva_delta = (uint32_t)((intptr_t)reloc_delta >> PAGE_SHIFT);
10262 
10263 	zone_meta_populate(reloc_base, early_sz);
10264 	memcpy(new_meta, early_meta,
10265 	    atop(early_sz) * sizeof(struct zone_page_metadata));
10266 	for (uint32_t i = 0; i < atop(early_sz); i++) {
10267 		zone_pva_relocate(&new_meta[i].zm_page_next, pva_delta);
10268 		zone_pva_relocate(&new_meta[i].zm_page_prev, pva_delta);
10269 	}
10270 
10271 	static_assert(ZONE_ID_VM_MAP_ENTRY == ZONE_ID_VM_MAP + 1);
10272 	static_assert(ZONE_ID_VM_MAP_HOLES == ZONE_ID_VM_MAP + 2);
10273 
10274 	for (zone_id_t zid = ZONE_ID_VM_MAP; zid <= ZONE_ID_VM_MAP_HOLES; zid++) {
10275 		zone_pva_relocate(&zone_array[zid].z_pageq_partial, pva_delta);
10276 		zone_pva_relocate(&zone_array[zid].z_pageq_full, pva_delta);
10277 	}
10278 
10279 	zba_populate(0, false);
10280 	memcpy(zba_base_header(), zba_chunk_startup, sizeof(zba_chunk_startup));
10281 	zba_meta()->zbam_right = (uint32_t)atop(zone_bits_size);
10282 
10283 	/*
10284 	 * Step 3: Relocate the boostrap VM structs
10285 	 *         (including rewriting their content).
10286 	 */
10287 	kma_flags_t flags = KMA_KOBJECT | KMA_NOENCRYPT | KMA_NOFAIL;
10288 
10289 #if ZSECURITY_CONFIG(ZONE_TAGGING)
10290 	flags |= KMA_TAG;
10291 #endif /* ZSECURITY_CONFIG_ZONE_TAGGING */
10292 
10293 
10294 	kernel_memory_populate(reloc_base, early_sz, flags,
10295 	    VM_KERN_MEMORY_OSFMK);
10296 
10297 	vm_memtag_disable_checking();
10298 	__nosan_memcpy((void *)reloc_base, (void *)early_r.min_address, early_sz);
10299 	vm_memtag_enable_checking();
10300 
10301 #if ZSECURITY_CONFIG(ZONE_TAGGING)
10302 	vm_memtag_relocate_tags(reloc_base, early_r.min_address, early_sz);
10303 #endif /* ZSECURITY_CONFIG_ZONE_TAGGING */
10304 
10305 #if KASAN
10306 	kasan_notify_address(reloc_base, early_sz);
10307 #endif /* KASAN */
10308 
10309 	vm_map_relocate_early_maps(reloc_delta);
10310 
10311 	for (uint32_t i = 0; i < atop(early_sz); i++) {
10312 		zone_id_t zid = new_meta[i].zm_index;
10313 		zone_t z = &zone_array[zid];
10314 		vm_size_t esize = zone_elem_outer_size(z);
10315 		vm_address_t base = reloc_base + ptoa(i) + zone_elem_inner_offs(z);
10316 		vm_address_t addr;
10317 
10318 		if (new_meta[i].zm_chunk_len >= ZM_SECONDARY_PAGE) {
10319 			continue;
10320 		}
10321 
10322 		for (uint32_t eidx = 0; eidx < z->z_chunk_elems; eidx++) {
10323 			if (zone_meta_is_free(&new_meta[i], eidx)) {
10324 				continue;
10325 			}
10326 
10327 			addr = vm_memtag_fixup_ptr(base + eidx * esize);
10328 #if KASAN_CLASSIC
10329 			kasan_alloc(addr,
10330 			    zone_elem_inner_size(z), zone_elem_inner_size(z),
10331 			    zone_elem_redzone(z), false,
10332 			    __builtin_frame_address(0));
10333 #endif
10334 			vm_map_relocate_early_elem(zid, addr, reloc_delta);
10335 		}
10336 	}
10337 }
10338 
10339 __startup_data
10340 static uint16_t submap_ratios[Z_SUBMAP_IDX_COUNT] = {
10341 #if ZSECURITY_CONFIG(READ_ONLY)
10342 	[Z_SUBMAP_IDX_VM]               = 15,
10343 	[Z_SUBMAP_IDX_READ_ONLY]        =  5,
10344 #else
10345 	[Z_SUBMAP_IDX_VM]               = 20,
10346 #endif /* !ZSECURITY_CONFIG(READ_ONLY) */
10347 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
10348 	[Z_SUBMAP_IDX_GENERAL_0]        = 15,
10349 	[Z_SUBMAP_IDX_GENERAL_1]        = 15,
10350 	[Z_SUBMAP_IDX_GENERAL_2]        = 15,
10351 	[Z_SUBMAP_IDX_GENERAL_3]        = 15,
10352 	[Z_SUBMAP_IDX_DATA]             = 20,
10353 #else
10354 	[Z_SUBMAP_IDX_GENERAL_0]        = 60,
10355 	[Z_SUBMAP_IDX_DATA]             = 20,
10356 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) */
10357 };
10358 
10359 __startup_func
10360 static inline uint16_t
zone_submap_ratios_denom(void)10361 zone_submap_ratios_denom(void)
10362 {
10363 	uint16_t denom = 0;
10364 
10365 	for (unsigned idx = 0; idx < Z_SUBMAP_IDX_COUNT; idx++) {
10366 		denom += submap_ratios[idx];
10367 	}
10368 
10369 	assert(denom == 100);
10370 
10371 	return denom;
10372 }
10373 
10374 __startup_func
10375 static inline vm_offset_t
zone_restricted_va_max(void)10376 zone_restricted_va_max(void)
10377 {
10378 	vm_offset_t compressor_max = VM_PACKING_MAX_PACKABLE(C_SLOT_PACKED_PTR);
10379 	vm_offset_t vm_page_max    = VM_PACKING_MAX_PACKABLE(VM_PAGE_PACKED_PTR);
10380 
10381 	return trunc_page(MIN(compressor_max, vm_page_max));
10382 }
10383 
10384 __startup_func
10385 static void
zone_set_map_sizes(void)10386 zone_set_map_sizes(void)
10387 {
10388 	vm_size_t zsize;
10389 	vm_size_t zsizearg;
10390 
10391 	/*
10392 	 * Compute the physical limits for the zone map
10393 	 */
10394 
10395 	if (PE_parse_boot_argn("zsize", &zsizearg, sizeof(zsizearg))) {
10396 		zsize = zsizearg * (1024ULL * 1024);
10397 	} else {
10398 		/* Set target zone size as 1/4 of physical memory */
10399 		zsize = (vm_size_t)(sane_size >> 2);
10400 		zsize += zsize >> 1;
10401 	}
10402 
10403 	if (zsize < CONFIG_ZONE_MAP_MIN) {
10404 		zsize = CONFIG_ZONE_MAP_MIN;   /* Clamp to min */
10405 	}
10406 	if (zsize > sane_size >> 1) {
10407 		zsize = (vm_size_t)(sane_size >> 1); /* Clamp to half of RAM max */
10408 	}
10409 	if (zsizearg == 0 && zsize > ZONE_MAP_MAX) {
10410 		/* if zsize boot-arg not present and zsize exceeds platform maximum, clip zsize */
10411 		printf("NOTE: zonemap size reduced from 0x%lx to 0x%lx\n",
10412 		    (uintptr_t)zsize, (uintptr_t)ZONE_MAP_MAX);
10413 		zsize = ZONE_MAP_MAX;
10414 	}
10415 
10416 	zone_pages_wired_max = (uint32_t)atop(trunc_page(zsize));
10417 
10418 
10419 	/*
10420 	 * Declare restrictions on zone max
10421 	 */
10422 	vm_offset_t vm_submap_size = round_page(
10423 		(submap_ratios[Z_SUBMAP_IDX_VM] * ZONE_MAP_VA_SIZE) /
10424 		zone_submap_ratios_denom());
10425 
10426 #if CONFIG_PROB_GZALLOC
10427 	vm_submap_size += pgz_get_size();
10428 #endif /* CONFIG_PROB_GZALLOC */
10429 	if (os_sub_overflow(zone_restricted_va_max(), vm_submap_size,
10430 	    &zone_map_range.min_address)) {
10431 		zone_map_range.min_address = 0;
10432 	}
10433 
10434 	zone_meta_size = round_page(atop(ZONE_MAP_VA_SIZE) *
10435 	    sizeof(struct zone_page_metadata)) + ZONE_GUARD_SIZE * 2;
10436 
10437 	static_assert(ZONE_MAP_MAX / (CHAR_BIT * KALLOC_MINSIZE) <=
10438 	    ZBA_PTR_MASK + 1);
10439 	zone_bits_size = round_page(ptoa(zone_pages_wired_max) /
10440 	    (CHAR_BIT * KALLOC_MINSIZE));
10441 
10442 #if VM_TAG_SIZECLASSES
10443 	if (zone_tagging_on) {
10444 		zba_xtra_shift = (uint8_t)fls(sizeof(vm_tag_t) - 1);
10445 	}
10446 	if (zba_xtra_shift) {
10447 		/*
10448 		 * if we need the extra space range, then limit the size of the
10449 		 * bitmaps to something reasonable instead of a theoretical
10450 		 * worst case scenario of all zones being for the smallest
10451 		 * allocation granule, in order to avoid fake VA pressure on
10452 		 * other parts of the system.
10453 		 */
10454 		zone_bits_size = round_page(zone_bits_size / 8);
10455 		zone_xtra_size = round_page(zone_bits_size * CHAR_BIT << zba_xtra_shift);
10456 	}
10457 #endif /* VM_TAG_SIZECLASSES */
10458 }
10459 STARTUP(KMEM, STARTUP_RANK_FIRST, zone_set_map_sizes);
10460 
10461 /*
10462  * Can't use zone_info.zi_map_range at this point as it is being used to
10463  * store the range of early pmap memory that was stolen to bootstrap the
10464  * necessary VM zones.
10465  */
10466 KMEM_RANGE_REGISTER_STATIC(zones, &zone_map_range, ZONE_MAP_VA_SIZE);
10467 KMEM_RANGE_REGISTER_DYNAMIC(zone_meta, &zone_info.zi_meta_range, ^{
10468 	return zone_meta_size + zone_bits_size + zone_xtra_size;
10469 });
10470 
10471 /*
10472  * Global initialization of Zone Allocator.
10473  * Runs after zone_bootstrap.
10474  */
10475 __startup_func
10476 static void
zone_init(void)10477 zone_init(void)
10478 {
10479 	vm_size_t           remaining_size = ZONE_MAP_VA_SIZE;
10480 	mach_vm_offset_t    submap_min = 0;
10481 	uint64_t            denom = zone_submap_ratios_denom();
10482 	/*
10483 	 * And now allocate the various pieces of VA and submaps.
10484 	 */
10485 
10486 	submap_min = zone_map_range.min_address;
10487 
10488 #if CONFIG_PROB_GZALLOC
10489 	vm_size_t pgz_size = pgz_get_size();
10490 
10491 	vm_map_will_allocate_early_map(&pgz_submap);
10492 	zone_info.zi_pgz_range = zone_kmem_suballoc(submap_min, pgz_size,
10493 	    VM_FLAGS_FIXED | VM_FLAGS_OVERWRITE,
10494 	    VM_KERN_MEMORY_ZONE, &pgz_submap);
10495 
10496 	submap_min     += pgz_size;
10497 	remaining_size -= pgz_size;
10498 #if DEBUG || DEVELOPMENT
10499 	printf("zone_init: pgzalloc  %p:%p (%u%c) [%d slots]\n",
10500 	    (void *)zone_info.zi_pgz_range.min_address,
10501 	    (void *)zone_info.zi_pgz_range.max_address,
10502 	    mach_vm_size_pretty(pgz_size), mach_vm_size_unit(pgz_size),
10503 	    pgz_slots);
10504 #endif /* DEBUG || DEVELOPMENT */
10505 #endif /* CONFIG_PROB_GZALLOC */
10506 
10507 	/*
10508 	 * Allocate the submaps
10509 	 */
10510 	for (zone_submap_idx_t idx = 0; idx < Z_SUBMAP_IDX_COUNT; idx++) {
10511 		if (submap_ratios[idx] == 0) {
10512 			zone_submaps[idx] = VM_MAP_NULL;
10513 		} else {
10514 			zone_submap_init(&submap_min, idx, submap_ratios[idx],
10515 			    &denom, &remaining_size);
10516 		}
10517 	}
10518 
10519 	zone_metadata_init();
10520 
10521 #if VM_TAG_SIZECLASSES
10522 	if (zone_tagging_on) {
10523 		vm_allocation_zones_init();
10524 	}
10525 #endif /* VM_TAG_SIZECLASSES */
10526 
10527 	zone_create_flags_t kma_flags = ZC_NOCACHING | ZC_NOGC | ZC_NOCALLOUT |
10528 	    ZC_KASAN_NOQUARANTINE | ZC_KASAN_NOREDZONE | ZC_VM;
10529 
10530 	(void)zone_create_ext("vm.permanent", 1, kma_flags | ZC_NO_TBI_TAG,
10531 	    ZONE_ID_PERMANENT, ^(zone_t z) {
10532 		z->z_permanent = true;
10533 		z->z_elem_size = 1;
10534 	});
10535 	(void)zone_create_ext("vm.permanent.percpu", 1,
10536 	    kma_flags | ZC_PERCPU | ZC_NO_TBI_TAG, ZONE_ID_PERCPU_PERMANENT, ^(zone_t z) {
10537 		z->z_permanent = true;
10538 		z->z_elem_size = 1;
10539 	});
10540 
10541 	zc_magazine_zone = zone_create("zcc_magazine_zone", sizeof(struct zone_magazine) +
10542 	    zc_mag_size() * sizeof(vm_offset_t),
10543 	    ZC_VM | ZC_NOCACHING | ZC_ZFREE_CLEARMEM | ZC_PGZ_USE_GUARDS);
10544 	zone_raise_reserve(zc_magazine_zone, (uint16_t)(2 * zpercpu_count()));
10545 
10546 	/*
10547 	 * Now migrate the startup statistics into their final storage,
10548 	 * and enable logging for early zones (that zone_create_ext() skipped).
10549 	 */
10550 	int cpu = cpu_number();
10551 	zone_index_foreach(idx) {
10552 		zone_t tz = &zone_array[idx];
10553 
10554 		if (tz->z_stats == __zpcpu_mangle_for_boot(&zone_stats_startup[idx])) {
10555 			zone_stats_t zs = zalloc_percpu_permanent_type(struct zone_stats);
10556 
10557 			*zpercpu_get_cpu(zs, cpu) = *zpercpu_get_cpu(tz->z_stats, cpu);
10558 			tz->z_stats = zs;
10559 		}
10560 		if (tz->z_self == tz) {
10561 #if ZALLOC_ENABLE_LOGGING
10562 			zone_setup_logging(tz);
10563 #endif /* ZALLOC_ENABLE_LOGGING */
10564 #if KASAN_TBI
10565 			zone_setup_kasan_logging(tz);
10566 #endif /* KASAN_TBI */
10567 		}
10568 	}
10569 }
10570 STARTUP(ZALLOC, STARTUP_RANK_FIRST, zone_init);
10571 
10572 void
zalloc_iokit_lockdown(void)10573 zalloc_iokit_lockdown(void)
10574 {
10575 	zone_share_always = false;
10576 }
10577 
10578 void
zalloc_first_proc_made(void)10579 zalloc_first_proc_made(void)
10580 {
10581 	zone_caching_disabled = 0;
10582 	zone_early_thres_mul = 1;
10583 }
10584 
10585 __startup_func
10586 vm_offset_t
zone_early_mem_init(vm_size_t size)10587 zone_early_mem_init(vm_size_t size)
10588 {
10589 	vm_offset_t mem;
10590 
10591 	assert3u(atop(size), <=, ZONE_EARLY_META_INLINE_COUNT);
10592 
10593 	/*
10594 	 * The zone that is used early to bring up the VM is stolen here.
10595 	 *
10596 	 * When the zone subsystem is actually initialized,
10597 	 * zone_metadata_init() will be called, and those pages
10598 	 * and the elements they contain, will be relocated into
10599 	 * the VM submap (even for architectures when those zones
10600 	 * do not live there).
10601 	 */
10602 	assert3u(size, <=, sizeof(zone_early_pages_to_cram));
10603 	mem = (vm_offset_t)zone_early_pages_to_cram;
10604 
10605 
10606 	zone_info.zi_meta_base = zone_early_meta_array_startup -
10607 	    zone_pva_from_addr(mem).packed_address;
10608 	zone_info.zi_map_range.min_address = mem;
10609 	zone_info.zi_map_range.max_address = mem + size;
10610 
10611 	zone_info.zi_bits_range = (struct mach_vm_range){
10612 		.min_address = (mach_vm_offset_t)zba_chunk_startup,
10613 		.max_address = (mach_vm_offset_t)zba_chunk_startup +
10614 	    sizeof(zba_chunk_startup),
10615 	};
10616 
10617 	zba_meta()->zbam_left  = 1;
10618 	zba_meta()->zbam_right = 1;
10619 	zba_init_chunk(0, false);
10620 
10621 	return mem;
10622 }
10623 
10624 #endif /* !ZALLOC_TEST */
10625 #pragma mark - tests
10626 #if DEBUG || DEVELOPMENT
10627 
10628 /*
10629  * Used for sysctl zone tests that aren't thread-safe. Ensure only one
10630  * thread goes through at a time.
10631  *
10632  * Or we can end up with multiple test zones (if a second zinit() comes through
10633  * before zdestroy()), which could lead us to run out of zones.
10634  */
10635 static bool any_zone_test_running = FALSE;
10636 
10637 static uintptr_t *
zone_copy_allocations(zone_t z,uintptr_t * elems,zone_pva_t page_index)10638 zone_copy_allocations(zone_t z, uintptr_t *elems, zone_pva_t page_index)
10639 {
10640 	vm_offset_t elem_size = zone_elem_outer_size(z);
10641 	vm_offset_t base;
10642 	struct zone_page_metadata *meta;
10643 
10644 	while (!zone_pva_is_null(page_index)) {
10645 		base  = zone_pva_to_addr(page_index) + zone_elem_inner_offs(z);
10646 		meta  = zone_pva_to_meta(page_index);
10647 
10648 		if (meta->zm_inline_bitmap) {
10649 			for (size_t i = 0; i < meta->zm_chunk_len; i++) {
10650 				uint32_t map = meta[i].zm_bitmap;
10651 
10652 				for (; map; map &= map - 1) {
10653 					*elems++ = INSTANCE_PUT(base +
10654 					    elem_size * __builtin_clz(map));
10655 				}
10656 				base += elem_size * 32;
10657 			}
10658 		} else {
10659 			uint32_t order = zba_bits_ref_order(meta->zm_bitmap);
10660 			bitmap_t *bits = zba_bits_ref_ptr(meta->zm_bitmap);
10661 			for (size_t i = 0; i < (1u << order); i++) {
10662 				uint64_t map = bits[i];
10663 
10664 				for (; map; map &= map - 1) {
10665 					*elems++ = INSTANCE_PUT(base +
10666 					    elem_size * __builtin_clzll(map));
10667 				}
10668 				base += elem_size * 64;
10669 			}
10670 		}
10671 
10672 		page_index = meta->zm_page_next;
10673 	}
10674 	return elems;
10675 }
10676 
10677 kern_return_t
zone_leaks(const char * zoneName,uint32_t nameLen,leak_site_proc proc)10678 zone_leaks(const char * zoneName, uint32_t nameLen, leak_site_proc proc)
10679 {
10680 	zone_t        zone = NULL;
10681 	uintptr_t *   array;
10682 	uintptr_t *   next;
10683 	uintptr_t     element;
10684 	uint32_t      idx, count, found;
10685 	uint32_t      nobtcount;
10686 	uint32_t      elemSize;
10687 	size_t        maxElems;
10688 
10689 	zone_foreach(z) {
10690 		if (!z->z_name) {
10691 			continue;
10692 		}
10693 		if (!strncmp(zoneName, z->z_name, nameLen)) {
10694 			zone = z;
10695 			break;
10696 		}
10697 	}
10698 	if (zone == NULL) {
10699 		return KERN_INVALID_NAME;
10700 	}
10701 
10702 	elemSize = (uint32_t)zone_elem_inner_size(zone);
10703 	maxElems = (zone->z_elems_avail + 1) & ~1ul;
10704 
10705 	array = kalloc_type_tag(vm_offset_t, maxElems, Z_WAITOK, VM_KERN_MEMORY_DIAG);
10706 	if (array == NULL) {
10707 		return KERN_RESOURCE_SHORTAGE;
10708 	}
10709 
10710 	zone_lock(zone);
10711 
10712 	next = array;
10713 	next = zone_copy_allocations(zone, next, zone->z_pageq_partial);
10714 	next = zone_copy_allocations(zone, next, zone->z_pageq_full);
10715 	count = (uint32_t)(next - array);
10716 
10717 	zone_unlock(zone);
10718 
10719 	zone_leaks_scan(array, count, (uint32_t)zone_elem_outer_size(zone), &found);
10720 	assert(found <= count);
10721 
10722 	for (idx = 0; idx < count; idx++) {
10723 		element = array[idx];
10724 		if (kInstanceFlagReferenced & element) {
10725 			continue;
10726 		}
10727 		element = INSTANCE_PUT(element) & ~kInstanceFlags;
10728 	}
10729 
10730 #if ZALLOC_ENABLE_LOGGING
10731 	if (zone->z_btlog && !corruption_debug_flag) {
10732 		// btlog_copy_backtraces_for_elements will set kInstanceFlagReferenced on elements it found
10733 		static_assert(sizeof(vm_address_t) == sizeof(uintptr_t));
10734 		btlog_copy_backtraces_for_elements(zone->z_btlog,
10735 		    (vm_address_t *)array, &count, elemSize, proc);
10736 	}
10737 #endif /* ZALLOC_ENABLE_LOGGING */
10738 
10739 	for (nobtcount = idx = 0; idx < count; idx++) {
10740 		element = array[idx];
10741 		if (!element) {
10742 			continue;
10743 		}
10744 		if (kInstanceFlagReferenced & element) {
10745 			continue;
10746 		}
10747 		nobtcount++;
10748 	}
10749 	if (nobtcount) {
10750 		proc(nobtcount, elemSize, BTREF_NULL);
10751 	}
10752 
10753 	kfree_type(vm_offset_t, maxElems, array);
10754 	return KERN_SUCCESS;
10755 }
10756 
10757 static int
zone_ro_basic_test_run(__unused int64_t in,int64_t * out)10758 zone_ro_basic_test_run(__unused int64_t in, int64_t *out)
10759 {
10760 	zone_security_flags_t zsflags;
10761 	uint32_t x = 4;
10762 	uint32_t *test_ptr;
10763 
10764 	if (os_atomic_xchg(&any_zone_test_running, true, relaxed)) {
10765 		printf("zone_ro_basic_test: Test already running.\n");
10766 		return EALREADY;
10767 	}
10768 
10769 	zsflags = zone_security_array[ZONE_ID__FIRST_RO];
10770 
10771 	for (int i = 0; i < 3; i++) {
10772 #if ZSECURITY_CONFIG(READ_ONLY)
10773 		/* Basic Test: Create int zone, zalloc int, modify value, free int */
10774 		printf("zone_ro_basic_test: Basic Test iteration %d\n", i);
10775 		printf("zone_ro_basic_test: create a sub-page size zone\n");
10776 
10777 		printf("zone_ro_basic_test: verify flags were set\n");
10778 		assert(zsflags.z_submap_idx == Z_SUBMAP_IDX_READ_ONLY);
10779 
10780 		printf("zone_ro_basic_test: zalloc an element\n");
10781 		test_ptr = (zalloc_ro)(ZONE_ID__FIRST_RO, Z_WAITOK);
10782 		assert(test_ptr);
10783 
10784 		printf("zone_ro_basic_test: verify we can't write to it\n");
10785 		assert(verify_write(&x, test_ptr, sizeof(x)) == EFAULT);
10786 
10787 		x = 4;
10788 		printf("zone_ro_basic_test: test zalloc_ro_mut to assign value\n");
10789 		zalloc_ro_mut(ZONE_ID__FIRST_RO, test_ptr, 0, &x, sizeof(uint32_t));
10790 		assert(test_ptr);
10791 		assert(*(uint32_t*)test_ptr == x);
10792 
10793 		x = 5;
10794 		printf("zone_ro_basic_test: test zalloc_ro_update_elem to assign value\n");
10795 		zalloc_ro_update_elem(ZONE_ID__FIRST_RO, test_ptr, &x);
10796 		assert(test_ptr);
10797 		assert(*(uint32_t*)test_ptr == x);
10798 
10799 		printf("zone_ro_basic_test: verify we can't write to it after assigning value\n");
10800 		assert(verify_write(&x, test_ptr, sizeof(x)) == EFAULT);
10801 
10802 		printf("zone_ro_basic_test: free elem\n");
10803 		zfree_ro(ZONE_ID__FIRST_RO, test_ptr);
10804 		assert(!test_ptr);
10805 #else
10806 		printf("zone_ro_basic_test: Read-only allocator n/a on 32bit platforms, test functionality of API\n");
10807 
10808 		printf("zone_ro_basic_test: verify flags were set\n");
10809 		assert(zsflags.z_submap_idx != Z_SUBMAP_IDX_READ_ONLY);
10810 
10811 		printf("zone_ro_basic_test: zalloc an element\n");
10812 		test_ptr = (zalloc_ro)(ZONE_ID__FIRST_RO, Z_WAITOK);
10813 		assert(test_ptr);
10814 
10815 		x = 4;
10816 		printf("zone_ro_basic_test: test zalloc_ro_mut to assign value\n");
10817 		zalloc_ro_mut(ZONE_ID__FIRST_RO, test_ptr, 0, &x, sizeof(uint32_t));
10818 		assert(test_ptr);
10819 		assert(*(uint32_t*)test_ptr == x);
10820 
10821 		x = 5;
10822 		printf("zone_ro_basic_test: test zalloc_ro_update_elem to assign value\n");
10823 		zalloc_ro_update_elem(ZONE_ID__FIRST_RO, test_ptr, &x);
10824 		assert(test_ptr);
10825 		assert(*(uint32_t*)test_ptr == x);
10826 
10827 		printf("zone_ro_basic_test: free elem\n");
10828 		zfree_ro(ZONE_ID__FIRST_RO, test_ptr);
10829 		assert(!test_ptr);
10830 #endif /* !ZSECURITY_CONFIG(READ_ONLY) */
10831 	}
10832 
10833 	printf("zone_ro_basic_test: garbage collection\n");
10834 	zone_gc(ZONE_GC_DRAIN);
10835 
10836 	printf("zone_ro_basic_test: Test passed\n");
10837 
10838 	*out = 1;
10839 	os_atomic_store(&any_zone_test_running, false, relaxed);
10840 	return 0;
10841 }
10842 SYSCTL_TEST_REGISTER(zone_ro_basic_test, zone_ro_basic_test_run);
10843 
10844 static int
zone_basic_test_run(__unused int64_t in,int64_t * out)10845 zone_basic_test_run(__unused int64_t in, int64_t *out)
10846 {
10847 	static zone_t test_zone_ptr = NULL;
10848 
10849 	unsigned int i = 0, max_iter = 5;
10850 	void * test_ptr;
10851 	zone_t test_zone;
10852 	int rc = 0;
10853 
10854 	if (os_atomic_xchg(&any_zone_test_running, true, relaxed)) {
10855 		printf("zone_basic_test: Test already running.\n");
10856 		return EALREADY;
10857 	}
10858 
10859 	printf("zone_basic_test: Testing zinit(), zalloc(), zfree() and zdestroy() on zone \"test_zone_sysctl\"\n");
10860 
10861 	/* zinit() and zdestroy() a zone with the same name a bunch of times, verify that we get back the same zone each time */
10862 	do {
10863 		test_zone = zinit(sizeof(uint64_t), 100 * sizeof(uint64_t), sizeof(uint64_t), "test_zone_sysctl");
10864 		assert(test_zone);
10865 
10866 #if KASAN_CLASSIC
10867 		if (test_zone_ptr == NULL && test_zone->z_elems_free != 0)
10868 #else
10869 		if (test_zone->z_elems_free != 0)
10870 #endif
10871 		{
10872 			printf("zone_basic_test: free count is not zero\n");
10873 			rc = EIO;
10874 			goto out;
10875 		}
10876 
10877 		if (test_zone_ptr == NULL) {
10878 			/* Stash the zone pointer returned on the fist zinit */
10879 			printf("zone_basic_test: zone created for the first time\n");
10880 			test_zone_ptr = test_zone;
10881 		} else if (test_zone != test_zone_ptr) {
10882 			printf("zone_basic_test: old zone pointer and new zone pointer don't match\n");
10883 			rc = EIO;
10884 			goto out;
10885 		}
10886 
10887 		test_ptr = zalloc_flags(test_zone, Z_WAITOK | Z_NOFAIL);
10888 		zfree(test_zone, test_ptr);
10889 
10890 		zdestroy(test_zone);
10891 		i++;
10892 
10893 		printf("zone_basic_test: Iteration %d successful\n", i);
10894 	} while (i < max_iter);
10895 
10896 #if !KASAN_CLASSIC /* because of the quarantine and redzones */
10897 	/* test Z_VA_SEQUESTER */
10898 	{
10899 		zone_t test_pcpu_zone;
10900 		kern_return_t kr;
10901 		const int num_allocs = 8;
10902 		int idx;
10903 		vm_size_t elem_size = 2 * PAGE_SIZE / num_allocs;
10904 		void *allocs[num_allocs];
10905 		void **allocs_pcpu;
10906 		vm_offset_t phys_pages = os_atomic_load(&zone_pages_wired, relaxed);
10907 
10908 		test_zone = zone_create("test_zone_sysctl", elem_size,
10909 		    ZC_DESTRUCTIBLE);
10910 		assert(test_zone);
10911 
10912 		test_pcpu_zone = zone_create("test_zone_sysctl.pcpu", sizeof(uint64_t),
10913 		    ZC_DESTRUCTIBLE | ZC_PERCPU);
10914 		assert(test_pcpu_zone);
10915 
10916 		for (idx = 0; idx < num_allocs; idx++) {
10917 			allocs[idx] = zalloc(test_zone);
10918 			assert(NULL != allocs[idx]);
10919 			printf("alloc[%d] %p\n", idx, allocs[idx]);
10920 		}
10921 		for (idx = 0; idx < num_allocs; idx++) {
10922 			zfree(test_zone, allocs[idx]);
10923 		}
10924 		assert(!zone_pva_is_null(test_zone->z_pageq_empty));
10925 
10926 		kr = kmem_alloc(kernel_map, (vm_address_t *)&allocs_pcpu, PAGE_SIZE,
10927 		    KMA_ZERO | KMA_KOBJECT, VM_KERN_MEMORY_DIAG);
10928 		assert(kr == KERN_SUCCESS);
10929 
10930 		for (idx = 0; idx < PAGE_SIZE / sizeof(uint64_t); idx++) {
10931 			allocs_pcpu[idx] = zalloc_percpu(test_pcpu_zone,
10932 			    Z_WAITOK | Z_ZERO);
10933 			assert(NULL != allocs_pcpu[idx]);
10934 		}
10935 		for (idx = 0; idx < PAGE_SIZE / sizeof(uint64_t); idx++) {
10936 			zfree_percpu(test_pcpu_zone, allocs_pcpu[idx]);
10937 		}
10938 		assert(!zone_pva_is_null(test_pcpu_zone->z_pageq_empty));
10939 
10940 		printf("vm_page_wire_count %d, vm_page_free_count %d, p to v %ld%%\n",
10941 		    vm_page_wire_count, vm_page_free_count,
10942 		    100L * phys_pages / zone_pages_wired_max);
10943 		zone_gc(ZONE_GC_DRAIN);
10944 		printf("vm_page_wire_count %d, vm_page_free_count %d, p to v %ld%%\n",
10945 		    vm_page_wire_count, vm_page_free_count,
10946 		    100L * phys_pages / zone_pages_wired_max);
10947 
10948 		unsigned int allva = 0;
10949 
10950 		zone_foreach(z) {
10951 			zone_lock(z);
10952 			allva += z->z_wired_cur;
10953 			if (zone_pva_is_null(z->z_pageq_va)) {
10954 				zone_unlock(z);
10955 				continue;
10956 			}
10957 			unsigned count = 0;
10958 			uint64_t size;
10959 			zone_pva_t pg = z->z_pageq_va;
10960 			struct zone_page_metadata *page_meta;
10961 			while (pg.packed_address) {
10962 				page_meta = zone_pva_to_meta(pg);
10963 				count += z->z_percpu ? 1 : z->z_chunk_pages;
10964 				if (page_meta->zm_chunk_len == ZM_SECONDARY_PAGE) {
10965 					count -= page_meta->zm_page_index;
10966 				}
10967 				pg = page_meta->zm_page_next;
10968 			}
10969 			size = zone_size_wired(z);
10970 			if (!size) {
10971 				size = 1;
10972 			}
10973 			printf("%s%s: seq %d, res %d, %qd %%\n",
10974 			    zone_heap_name(z), z->z_name, z->z_va_cur - z->z_wired_cur,
10975 			    z->z_wired_cur, zone_size_allocated(z) * 100ULL / size);
10976 			zone_unlock(z);
10977 		}
10978 
10979 		printf("total va: %d\n", allva);
10980 
10981 		assert(zone_pva_is_null(test_zone->z_pageq_empty));
10982 		assert(zone_pva_is_null(test_zone->z_pageq_partial));
10983 		assert(!zone_pva_is_null(test_zone->z_pageq_va));
10984 		assert(zone_pva_is_null(test_pcpu_zone->z_pageq_empty));
10985 		assert(zone_pva_is_null(test_pcpu_zone->z_pageq_partial));
10986 		assert(!zone_pva_is_null(test_pcpu_zone->z_pageq_va));
10987 
10988 		for (idx = 0; idx < num_allocs; idx++) {
10989 			assert(0 == pmap_find_phys(kernel_pmap, (addr64_t)(uintptr_t) allocs[idx]));
10990 		}
10991 
10992 		/* make sure the zone is still usable after a GC */
10993 
10994 		for (idx = 0; idx < num_allocs; idx++) {
10995 			allocs[idx] = zalloc(test_zone);
10996 			assert(allocs[idx]);
10997 			printf("alloc[%d] %p\n", idx, allocs[idx]);
10998 		}
10999 		for (idx = 0; idx < num_allocs; idx++) {
11000 			zfree(test_zone, allocs[idx]);
11001 		}
11002 
11003 		for (idx = 0; idx < PAGE_SIZE / sizeof(uint64_t); idx++) {
11004 			allocs_pcpu[idx] = zalloc_percpu(test_pcpu_zone,
11005 			    Z_WAITOK | Z_ZERO);
11006 			assert(NULL != allocs_pcpu[idx]);
11007 		}
11008 		for (idx = 0; idx < PAGE_SIZE / sizeof(uint64_t); idx++) {
11009 			zfree_percpu(test_pcpu_zone, allocs_pcpu[idx]);
11010 		}
11011 
11012 		assert(!zone_pva_is_null(test_pcpu_zone->z_pageq_empty));
11013 
11014 		kmem_free(kernel_map, (vm_address_t)allocs_pcpu, PAGE_SIZE);
11015 
11016 		zdestroy(test_zone);
11017 		zdestroy(test_pcpu_zone);
11018 	}
11019 #endif /* KASAN_CLASSIC */
11020 
11021 	printf("zone_basic_test: Test passed\n");
11022 
11023 
11024 	*out = 1;
11025 out:
11026 	os_atomic_store(&any_zone_test_running, false, relaxed);
11027 	return rc;
11028 }
11029 SYSCTL_TEST_REGISTER(zone_basic_test, zone_basic_test_run);
11030 
11031 struct zone_stress_obj {
11032 	TAILQ_ENTRY(zone_stress_obj) zso_link;
11033 };
11034 
11035 struct zone_stress_ctx {
11036 	thread_t  zsc_leader;
11037 	lck_mtx_t zsc_lock;
11038 	zone_t    zsc_zone;
11039 	uint64_t  zsc_end;
11040 	uint32_t  zsc_workers;
11041 };
11042 
11043 static void
zone_stress_worker(void * arg,wait_result_t __unused wr)11044 zone_stress_worker(void *arg, wait_result_t __unused wr)
11045 {
11046 	struct zone_stress_ctx *ctx = arg;
11047 	bool leader = ctx->zsc_leader == current_thread();
11048 	TAILQ_HEAD(zone_stress_head, zone_stress_obj) head = TAILQ_HEAD_INITIALIZER(head);
11049 	struct zone_bool_gen bg = { };
11050 	struct zone_stress_obj *obj;
11051 	uint32_t allocs = 0;
11052 
11053 	random_bool_init(&bg.zbg_bg);
11054 
11055 	do {
11056 		for (int i = 0; i < 2000; i++) {
11057 			uint32_t what = random_bool_gen_bits(&bg.zbg_bg,
11058 			    bg.zbg_entropy, ZONE_ENTROPY_CNT, 1);
11059 			switch (what) {
11060 			case 0:
11061 			case 1:
11062 				if (allocs < 10000) {
11063 					obj = zalloc(ctx->zsc_zone);
11064 					TAILQ_INSERT_HEAD(&head, obj, zso_link);
11065 					allocs++;
11066 				}
11067 				break;
11068 			case 2:
11069 			case 3:
11070 				if (allocs < 10000) {
11071 					obj = zalloc(ctx->zsc_zone);
11072 					TAILQ_INSERT_TAIL(&head, obj, zso_link);
11073 					allocs++;
11074 				}
11075 				break;
11076 			case 4:
11077 				if (leader) {
11078 					zone_gc(ZONE_GC_DRAIN);
11079 				}
11080 				break;
11081 			case 5:
11082 			case 6:
11083 				if (!TAILQ_EMPTY(&head)) {
11084 					obj = TAILQ_FIRST(&head);
11085 					TAILQ_REMOVE(&head, obj, zso_link);
11086 					zfree(ctx->zsc_zone, obj);
11087 					allocs--;
11088 				}
11089 				break;
11090 			case 7:
11091 				if (!TAILQ_EMPTY(&head)) {
11092 					obj = TAILQ_LAST(&head, zone_stress_head);
11093 					TAILQ_REMOVE(&head, obj, zso_link);
11094 					zfree(ctx->zsc_zone, obj);
11095 					allocs--;
11096 				}
11097 				break;
11098 			}
11099 		}
11100 	} while (mach_absolute_time() < ctx->zsc_end);
11101 
11102 	while (!TAILQ_EMPTY(&head)) {
11103 		obj = TAILQ_FIRST(&head);
11104 		TAILQ_REMOVE(&head, obj, zso_link);
11105 		zfree(ctx->zsc_zone, obj);
11106 	}
11107 
11108 	lck_mtx_lock(&ctx->zsc_lock);
11109 	if (--ctx->zsc_workers == 0) {
11110 		thread_wakeup(ctx);
11111 	} else if (leader) {
11112 		while (ctx->zsc_workers) {
11113 			lck_mtx_sleep(&ctx->zsc_lock, LCK_SLEEP_DEFAULT, ctx,
11114 			    THREAD_UNINT);
11115 		}
11116 	}
11117 	lck_mtx_unlock(&ctx->zsc_lock);
11118 
11119 	if (!leader) {
11120 		thread_terminate_self();
11121 		__builtin_unreachable();
11122 	}
11123 }
11124 
11125 static int
zone_stress_test_run(__unused int64_t in,int64_t * out)11126 zone_stress_test_run(__unused int64_t in, int64_t *out)
11127 {
11128 	struct zone_stress_ctx ctx = {
11129 		.zsc_leader  = current_thread(),
11130 		.zsc_workers = 3,
11131 	};
11132 	kern_return_t kr;
11133 	thread_t th;
11134 
11135 	if (os_atomic_xchg(&any_zone_test_running, true, relaxed)) {
11136 		printf("zone_stress_test: Test already running.\n");
11137 		return EALREADY;
11138 	}
11139 
11140 	lck_mtx_init(&ctx.zsc_lock, &zone_locks_grp, LCK_ATTR_NULL);
11141 	ctx.zsc_zone = zone_create("test_zone_344", 344,
11142 	    ZC_DESTRUCTIBLE | ZC_NOCACHING);
11143 	assert(ctx.zsc_zone->z_chunk_pages > 1);
11144 
11145 	clock_interval_to_deadline(5, NSEC_PER_SEC, &ctx.zsc_end);
11146 
11147 	printf("zone_stress_test: Starting (leader %p)\n", current_thread());
11148 
11149 	os_atomic_inc(&zalloc_simulate_vm_pressure, relaxed);
11150 
11151 	for (uint32_t i = 1; i < ctx.zsc_workers; i++) {
11152 		kr = kernel_thread_start_priority(zone_stress_worker, &ctx,
11153 		    BASEPRI_DEFAULT, &th);
11154 		if (kr == KERN_SUCCESS) {
11155 			printf("zone_stress_test: thread %d: %p\n", i, th);
11156 			thread_deallocate(th);
11157 		} else {
11158 			ctx.zsc_workers--;
11159 		}
11160 	}
11161 
11162 	zone_stress_worker(&ctx, 0);
11163 
11164 	lck_mtx_destroy(&ctx.zsc_lock, &zone_locks_grp);
11165 
11166 	zdestroy(ctx.zsc_zone);
11167 
11168 	printf("zone_stress_test: Done\n");
11169 
11170 	*out = 1;
11171 	os_atomic_dec(&zalloc_simulate_vm_pressure, relaxed);
11172 	os_atomic_store(&any_zone_test_running, false, relaxed);
11173 	return 0;
11174 }
11175 SYSCTL_TEST_REGISTER(zone_stress_test, zone_stress_test_run);
11176 
11177 struct zone_gc_stress_obj {
11178 	STAILQ_ENTRY(zone_gc_stress_obj) zgso_link;
11179 	uintptr_t                        zgso_pad[63];
11180 };
11181 STAILQ_HEAD(zone_gc_stress_head, zone_gc_stress_obj);
11182 
11183 #define ZONE_GC_OBJ_PER_PAGE  (PAGE_SIZE / sizeof(struct zone_gc_stress_obj))
11184 
11185 KALLOC_TYPE_DEFINE(zone_gc_stress_zone, struct zone_gc_stress_obj, KT_DEFAULT);
11186 
11187 struct zone_gc_stress_ctx {
11188 	bool      zgsc_done;
11189 	lck_mtx_t zgsc_lock;
11190 	zone_t    zgsc_zone;
11191 	uint64_t  zgsc_end;
11192 	uint32_t  zgsc_workers;
11193 };
11194 
11195 static void
zone_gc_stress_test_alloc_n(struct zone_gc_stress_head * head,size_t n)11196 zone_gc_stress_test_alloc_n(struct zone_gc_stress_head *head, size_t n)
11197 {
11198 	struct zone_gc_stress_obj *obj;
11199 
11200 	for (size_t i = 0; i < n; i++) {
11201 		obj = zalloc_flags(zone_gc_stress_zone, Z_WAITOK);
11202 		STAILQ_INSERT_TAIL(head, obj, zgso_link);
11203 	}
11204 }
11205 
11206 static void
zone_gc_stress_test_free_n(struct zone_gc_stress_head * head)11207 zone_gc_stress_test_free_n(struct zone_gc_stress_head *head)
11208 {
11209 	struct zone_gc_stress_obj *obj;
11210 
11211 	while ((obj = STAILQ_FIRST(head))) {
11212 		STAILQ_REMOVE_HEAD(head, zgso_link);
11213 		zfree(zone_gc_stress_zone, obj);
11214 	}
11215 }
11216 
11217 __dead2
11218 static void
zone_gc_stress_worker(void * arg,wait_result_t __unused wr)11219 zone_gc_stress_worker(void *arg, wait_result_t __unused wr)
11220 {
11221 	struct zone_gc_stress_ctx *ctx = arg;
11222 	struct zone_gc_stress_head head = STAILQ_HEAD_INITIALIZER(head);
11223 
11224 	while (!ctx->zgsc_done) {
11225 		zone_gc_stress_test_alloc_n(&head, ZONE_GC_OBJ_PER_PAGE * 4);
11226 		zone_gc_stress_test_free_n(&head);
11227 	}
11228 
11229 	lck_mtx_lock(&ctx->zgsc_lock);
11230 	if (--ctx->zgsc_workers == 0) {
11231 		thread_wakeup(ctx);
11232 	}
11233 	lck_mtx_unlock(&ctx->zgsc_lock);
11234 
11235 	thread_terminate_self();
11236 	__builtin_unreachable();
11237 }
11238 
11239 static int
zone_gc_stress_test_run(__unused int64_t in,int64_t * out)11240 zone_gc_stress_test_run(__unused int64_t in, int64_t *out)
11241 {
11242 	struct zone_gc_stress_head head = STAILQ_HEAD_INITIALIZER(head);
11243 	struct zone_gc_stress_ctx ctx = {
11244 		.zgsc_workers = 3,
11245 	};
11246 	kern_return_t kr;
11247 	thread_t th;
11248 
11249 	if (os_atomic_xchg(&any_zone_test_running, true, relaxed)) {
11250 		printf("zone_gc_stress_test: Test already running.\n");
11251 		return EALREADY;
11252 	}
11253 
11254 	lck_mtx_init(&ctx.zgsc_lock, &zone_locks_grp, LCK_ATTR_NULL);
11255 	lck_mtx_lock(&ctx.zgsc_lock);
11256 
11257 	printf("zone_gc_stress_test: Starting (leader %p)\n", current_thread());
11258 
11259 	os_atomic_inc(&zalloc_simulate_vm_pressure, relaxed);
11260 
11261 	for (uint32_t i = 0; i < ctx.zgsc_workers; i++) {
11262 		kr = kernel_thread_start_priority(zone_gc_stress_worker, &ctx,
11263 		    BASEPRI_DEFAULT, &th);
11264 		if (kr == KERN_SUCCESS) {
11265 			printf("zone_gc_stress_test: thread %d: %p\n", i, th);
11266 			thread_deallocate(th);
11267 		} else {
11268 			ctx.zgsc_workers--;
11269 		}
11270 	}
11271 
11272 	for (uint64_t i = 0; i < in; i++) {
11273 		size_t count = zc_mag_size() * zc_free_batch_size() * 10;
11274 
11275 		if (count < ZONE_GC_OBJ_PER_PAGE * 20) {
11276 			count = ZONE_GC_OBJ_PER_PAGE * 20;
11277 		}
11278 
11279 		zone_gc_stress_test_alloc_n(&head, count);
11280 		zone_gc_stress_test_free_n(&head);
11281 
11282 		lck_mtx_lock(&zone_gc_lock);
11283 		zone_reclaim(zone_gc_stress_zone->kt_zv.zv_zone,
11284 		    ZONE_RECLAIM_TRIM);
11285 		lck_mtx_unlock(&zone_gc_lock);
11286 
11287 		printf("zone_gc_stress_test: round %lld/%lld\n", i + 1, in);
11288 	}
11289 
11290 	os_atomic_thread_fence(seq_cst);
11291 	ctx.zgsc_done = true;
11292 	lck_mtx_sleep(&ctx.zgsc_lock, LCK_SLEEP_DEFAULT, &ctx, THREAD_UNINT);
11293 	lck_mtx_unlock(&ctx.zgsc_lock);
11294 
11295 	lck_mtx_destroy(&ctx.zgsc_lock, &zone_locks_grp);
11296 
11297 	lck_mtx_lock(&zone_gc_lock);
11298 	zone_reclaim(zone_gc_stress_zone->kt_zv.zv_zone,
11299 	    ZONE_RECLAIM_DRAIN);
11300 	lck_mtx_unlock(&zone_gc_lock);
11301 
11302 	printf("zone_gc_stress_test: Done\n");
11303 
11304 	*out = 1;
11305 	os_atomic_dec(&zalloc_simulate_vm_pressure, relaxed);
11306 	os_atomic_store(&any_zone_test_running, false, relaxed);
11307 	return 0;
11308 }
11309 SYSCTL_TEST_REGISTER(zone_gc_stress_test, zone_gc_stress_test_run);
11310 
11311 /*
11312  * Routines to test that zone garbage collection and zone replenish threads
11313  * running at the same time don't cause problems.
11314  */
11315 
11316 static int
zone_gc_replenish_test(__unused int64_t in,int64_t * out)11317 zone_gc_replenish_test(__unused int64_t in, int64_t *out)
11318 {
11319 	zone_gc(ZONE_GC_DRAIN);
11320 	*out = 1;
11321 	return 0;
11322 }
11323 SYSCTL_TEST_REGISTER(zone_gc_replenish_test, zone_gc_replenish_test);
11324 
11325 static int
zone_alloc_replenish_test(__unused int64_t in,int64_t * out)11326 zone_alloc_replenish_test(__unused int64_t in, int64_t *out)
11327 {
11328 	zone_t z = vm_map_entry_zone;
11329 	struct data { struct data *next; } *node, *list = NULL;
11330 
11331 	if (z == NULL) {
11332 		printf("Couldn't find a replenish zone\n");
11333 		return EIO;
11334 	}
11335 
11336 	/* big enough to go past replenishment */
11337 	for (uint32_t i = 0; i < 10 * z->z_elems_rsv; ++i) {
11338 		node = zalloc(z);
11339 		node->next = list;
11340 		list = node;
11341 	}
11342 
11343 	/*
11344 	 * release the memory we allocated
11345 	 */
11346 	while (list != NULL) {
11347 		node = list;
11348 		list = list->next;
11349 		zfree(z, node);
11350 	}
11351 
11352 	*out = 1;
11353 	return 0;
11354 }
11355 SYSCTL_TEST_REGISTER(zone_alloc_replenish_test, zone_alloc_replenish_test);
11356 
11357 #endif /* DEBUG || DEVELOPMENT */
11358