xref: /xnu-10002.41.9/osfmk/kern/zalloc_internal.h (revision 699cd48037512bf4380799317ca44ca453c82f57)
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31 /*
32  * Mach Operating System
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56 /*
57  */
58 
59 #ifndef _KERN_ZALLOC_INTERNAL_H_
60 #define _KERN_ZALLOC_INTERNAL_H_
61 
62 #include <kern/zalloc.h>
63 #include <kern/locks.h>
64 #include <kern/simple_lock.h>
65 
66 #include <os/atomic_private.h>
67 #include <sys/queue.h>
68 #include <vm/vm_map_internal.h>
69 
70 #if KASAN
71 #include <san/kasan.h>
72 #include <kern/spl.h>
73 #endif /* !KASAN */
74 
75 /*
76  * Disable zalloc zero validation under kasan as it is
77  * double-duty with what kasan already does.
78  */
79 #if KASAN
80 #define ZALLOC_ENABLE_ZERO_CHECK        0
81 #else
82 #define ZALLOC_ENABLE_ZERO_CHECK        1
83 #endif
84 
85 #if KASAN
86 #define ZALLOC_ENABLE_LOGGING           0
87 #elif DEBUG || DEVELOPMENT
88 #define ZALLOC_ENABLE_LOGGING           1
89 #else
90 #define ZALLOC_ENABLE_LOGGING           0
91 #endif
92 
93 /*!
94  * @file <kern/zalloc_internal.h>
95  *
96  * @abstract
97  * Exposes some guts of zalloc to interact with the VM, debugging, copyio and
98  * kalloc subsystems.
99  */
100 
101 __BEGIN_DECLS
102 
103 #pragma GCC visibility push(hidden)
104 
105 /*
106  *	A zone is a collection of fixed size blocks for which there
107  *	is fast allocation/deallocation access.  Kernel routines can
108  *	use zones to manage data structures dynamically, creating a zone
109  *	for each type of data structure to be managed.
110  *
111  */
112 
113 /*!
114  * @typedef zone_pva_t
115  *
116  * @brief
117  * Type used to point to a page virtual address in the zone allocator.
118  *
119  * @description
120  * - Valid pages have the top bit set.
121  * - 0 represents the "NULL" page
122  * - non 0 values with the top bit cleared represent queue heads,
123  *   indexed from the beginning of the __DATA section of the kernel.
124  *   (see zone_pageq_base).
125  */
126 typedef struct zone_packed_virtual_address {
127 	uint32_t packed_address;
128 } zone_pva_t;
129 
130 /*!
131  * @struct zone_stats
132  *
133  * @abstract
134  * Per-cpu structure used for basic zone stats.
135  *
136  * @discussion
137  * The values aren't scaled for per-cpu zones.
138  */
139 struct zone_stats {
140 	uint64_t            zs_mem_allocated;
141 	uint64_t            zs_mem_freed;
142 	uint64_t            zs_alloc_fail;
143 	uint32_t            zs_alloc_rr;     /* allocation rr bias */
144 	uint32_t _Atomic    zs_alloc_not_shared;
145 };
146 
147 typedef struct zone_magazine *zone_magazine_t;
148 
149 /*!
150  * @struct zone_depot
151  *
152  * @abstract
153  * Holds a list of full and empty magazines.
154  *
155  * @discussion
156  * The data structure is a "STAILQ" and an "SLIST" combined with counters
157  * to know their lengths in O(1). Here is a graphical example:
158  *
159  *      zd_full = 3
160  *      zd_empty = 1
161  * ╭─── zd_head
162  * │ ╭─ zd_tail
163  * │ ╰────────────────────────────────────╮
164  * │    ╭───────╮   ╭───────╮   ╭───────╮ v ╭───────╮
165  * ╰───>│███████┼──>│███████┼──>│███████┼──>│       ┼─> X
166  *      ╰───────╯   ╰───────╯   ╰───────╯   ╰───────╯
167  */
168 struct zone_depot {
169 	uint32_t            zd_full;
170 	uint32_t            zd_empty;
171 	zone_magazine_t     zd_head;
172 	zone_magazine_t    *zd_tail;
173 };
174 
175 /* see https://lemire.me/blog/2019/02/20/more-fun-with-fast-remainders-when-the-divisor-is-a-constant/ */
176 #define Z_MAGIC_QUO(s)      (((1ull << 32) - 1) / (uint64_t)(s) + 1)
177 #define Z_MAGIC_ALIGNED(s)  (~0u / (uint32_t)(s) + 1)
178 
179 /*
180  * Returns (offs / size) if offs is small enough
181  * and magic = Z_MAGIC_QUO(size)
182  */
183 static inline uint32_t
Z_FAST_QUO(uint64_t offs,uint64_t magic)184 Z_FAST_QUO(uint64_t offs, uint64_t magic)
185 {
186 	return (offs * magic) >> 32;
187 }
188 
189 /*
190  * Returns (offs % size) if offs is small enough
191  * and magic = Z_MAGIC_QUO(size)
192  */
193 static inline uint32_t
Z_FAST_MOD(uint64_t offs,uint64_t magic,uint64_t size)194 Z_FAST_MOD(uint64_t offs, uint64_t magic, uint64_t size)
195 {
196 	uint32_t lowbits = (uint32_t)(offs * magic);
197 
198 	return (lowbits * size) >> 32;
199 }
200 
201 /*
202  * Returns whether (offs % size) == 0 if offs is small enough
203  * and magic = Z_MAGIC_ALIGNED(size)
204  */
205 static inline bool
Z_FAST_ALIGNED(uint64_t offs,uint32_t magic)206 Z_FAST_ALIGNED(uint64_t offs, uint32_t magic)
207 {
208 	return (uint32_t)(offs * magic) < magic;
209 }
210 
211 struct zone_size_params {
212 	uint32_t            z_align_magic;  /* magic to use with Z_FAST_ALIGNED()  */
213 	uint32_t            z_elem_size;    /* size of an element                  */
214 };
215 
216 struct zone_expand {
217 	struct zone_expand *ze_next;
218 	thread_t            ze_thread;
219 	bool                ze_pg_wait;
220 	bool                ze_vm_priv;
221 	bool                ze_clear_priv;
222 };
223 
224 #define Z_WMA_UNIT (1u << 8)
225 #define Z_WMA_MIX(base, e)  ((3 * (base) + (e) * Z_WMA_UNIT) / 4)
226 
227 struct zone {
228 	/*
229 	 * Readonly / rarely written fields
230 	 */
231 
232 	/*
233 	 * The first 4 fields match a zone_view.
234 	 *
235 	 * z_self points back to the zone when the zone is initialized,
236 	 * or is NULL else.
237 	 */
238 	struct zone        *z_self;
239 	zone_stats_t        z_stats;
240 	const char         *z_name;
241 	struct zone_view   *z_views;
242 	struct zone_expand *z_expander;
243 
244 	uint64_t            z_quo_magic;
245 	uint32_t            z_align_magic;
246 	uint16_t            z_elem_size;
247 	uint16_t            z_elem_offs;
248 	uint16_t            z_chunk_pages;
249 	uint16_t            z_chunk_elems;
250 
251 	uint32_t /* 32 bits */
252 	/*
253 	 * Lifecycle state (Mutable after creation)
254 	 */
255 	    z_destroyed        :1,  /* zone is (being) destroyed */
256 	    z_async_refilling  :1,  /* asynchronous allocation pending? */
257 	    z_depot_cleanup    :1,  /* per cpu depots need cleaning */
258 	    z_expanding_wait   :1,  /* is thread waiting for expansion? */
259 	    z_exhausted_wait   :1,  /* are threads waiting for exhaustion end */
260 	    z_exhausts         :1,  /* whether the zone exhausts by design */
261 
262 	/*
263 	 * Behavior configuration bits
264 	 */
265 	    z_percpu           :1,  /* the zone is percpu */
266 	    z_smr              :1,  /* the zone uses SMR */
267 	    z_permanent        :1,  /* the zone allocations are permanent */
268 	    z_nocaching        :1,  /* disallow zone caching for this zone */
269 	    collectable        :1,  /* garbage collect empty pages */
270 	    no_callout         :1,
271 	    z_destructible     :1,  /* zone can be zdestroy()ed  */
272 
273 	    _reserved          :6,
274 
275 	/*
276 	 * Debugging features
277 	 */
278 	    z_pgz_tracked      :1,  /* this zone is tracked by pgzalloc */
279 	    z_pgz_use_guards   :1,  /* this zone uses guards with PGZ */
280 	    z_kasan_fakestacks :1,
281 	    z_kasan_quarantine :1,  /* whether to use the kasan quarantine */
282 	    z_tags_sizeclass   :6,  /* idx into zone_tags_sizeclasses to associate
283 	                             * sizeclass for a particualr kalloc tag */
284 	    z_uses_tags        :1,
285 	    z_log_on           :1,  /* zone logging was enabled by boot-arg */
286 	    z_tbi_tag          :1;  /* Zone supports tbi tagging */
287 
288 	uint8_t             z_cacheline1[0] __attribute__((aligned(64)));
289 
290 	/*
291 	 * Zone caching / recirculation cacheline
292 	 *
293 	 * z_recirc* fields are protected by the recirculation lock.
294 	 *
295 	 * z_recirc_cont_wma:
296 	 *   weighted moving average of the number of contentions per second,
297 	 *   in Z_WMA_UNIT units (fixed point decimal).
298 	 *
299 	 * z_recirc_cont_cur:
300 	 *   count of recorded contentions that will be fused
301 	 *   in z_recirc_cont_wma at the next period.
302 	 *
303 	 *   Note: if caching is disabled,
304 	 *   this field is used under the zone lock.
305 	 *
306 	 * z_elems_free_{min,wma} (overloaded on z_recirc_empty*):
307 	 *   tracks the history of the minimum values of z_elems_free over time
308 	 *   with "min" being the minimum it hit for the current period,
309 	 *   and "wma" the weighted moving average of those value.
310 	 *
311 	 *   This field is used if z_pcpu_cache is NULL,
312 	 *   otherwise it aliases with z_recirc_empty_{min,wma}
313 	 *
314 	 * z_recirc_{full,empty}_{min,wma}:
315 	 *   tracks the history of the the minimum number of full/empty
316 	 *   magazines in the depot over time, with "min" being the minimum
317 	 *   it hit for the current period, and "wma" the weighted moving
318 	 *   average of those value.
319 	 */
320 	struct zone_cache  *__zpercpu z_pcpu_cache;
321 	struct zone_depot   z_recirc;
322 
323 	hw_lck_ticket_t     z_recirc_lock;
324 	uint32_t            z_recirc_full_min;
325 	uint32_t            z_recirc_full_wma;
326 	union {
327 		uint32_t    z_recirc_empty_min;
328 		uint32_t    z_elems_free_min;
329 	};
330 	union {
331 		uint32_t    z_recirc_empty_wma;
332 		uint32_t    z_elems_free_wma;
333 	};
334 	uint32_t            z_recirc_cont_cur;
335 	uint32_t            z_recirc_cont_wma;
336 
337 	uint16_t            z_depot_size;
338 	uint16_t            z_depot_limit;
339 
340 	uint8_t             z_cacheline2[0] __attribute__((aligned(64)));
341 
342 	/*
343 	 * often mutated fields
344 	 */
345 
346 	hw_lck_ticket_t     z_lock;
347 
348 	/*
349 	 * Page accounting (wired / VA)
350 	 *
351 	 * Those numbers are unscaled for z_percpu zones
352 	 * (zone_scale_for_percpu() needs to be used to find the true value).
353 	 */
354 	uint32_t            z_wired_max;    /* how large can this zone grow        */
355 	uint32_t            z_wired_hwm;    /* z_wired_cur high watermark          */
356 	uint32_t            z_wired_cur;    /* number of pages used by this zone   */
357 	uint32_t            z_wired_empty;  /* pages collectable by GC             */
358 	uint32_t            z_va_cur;       /* amount of VA used by this zone      */
359 
360 	/*
361 	 * list of metadata structs, which maintain per-page free element lists
362 	 */
363 	zone_pva_t          z_pageq_empty;  /* populated, completely empty pages   */
364 	zone_pva_t          z_pageq_partial;/* populated, partially filled pages   */
365 	zone_pva_t          z_pageq_full;   /* populated, completely full pages    */
366 	zone_pva_t          z_pageq_va;     /* non-populated VA pages              */
367 
368 	/*
369 	 * Zone statistics
370 	 *
371 	 * z_elems_avail:
372 	 *   number of elements in the zone (at all).
373 	 */
374 	uint32_t            z_elems_free;   /* Number of free elements             */
375 	uint32_t            z_elems_avail;  /* Number of elements available        */
376 	uint32_t            z_elems_rsv;
377 	uint32_t            z_array_size_class;
378 
379 	struct zone        *z_kt_next;
380 
381 	uint8_t             z_cacheline3[0] __attribute__((aligned(64)));
382 
383 #if KASAN_CLASSIC
384 	uint16_t            z_kasan_redzone;
385 	spl_t               z_kasan_spl;
386 #endif
387 #if ZONE_ENABLE_LOGGING || CONFIG_ZLEAKS || KASAN_TBI
388 	/*
389 	 * the allocation logs are used when:
390 	 *
391 	 * - zlog<n>= boot-args are used (and then z_log_on is set)
392 	 *
393 	 * - the leak detection was triggered for the zone.
394 	 *   In that case, the log can't ever be freed,
395 	 *   but it can be enabled/disabled dynamically.
396 	 */
397 	struct btlog       *z_btlog;
398 	struct btlog       *z_btlog_disabled;
399 #endif
400 } __attribute__((aligned((64))));
401 
402 /*!
403  * @typedef zone_security_flags_t
404  *
405  * @brief
406  * Type used to store the immutable security properties of a zone.
407  *
408  * @description
409  * These properties influence the security nature of a zone and can't be
410  * modified after lockdown.
411  */
412 typedef struct zone_security_flags {
413 	uint16_t
414 	/*
415 	 * Security sensitive configuration bits
416 	 */
417 	    z_submap_idx       :8,  /* a Z_SUBMAP_IDX_* value */
418 	    z_kheap_id         :2,  /* zone_kheap_id_t when part of a kalloc heap */
419 	    z_kalloc_type      :1,  /* zones that does types based seggregation */
420 	    z_lifo             :1,  /* depot and recirculation layer are LIFO */
421 	    z_pgz_use_guards   :1,  /* this zone uses guards with PGZ */
422 	    z_submap_from_end  :1,  /* allocate from the left or the right ? */
423 	    z_noencrypt        :1,  /* do not encrypt pages when hibernating */
424 	    z_unused           :1;
425 	/*
426 	 * Signature equivalance zone
427 	 */
428 	zone_id_t           z_sig_eq;
429 } zone_security_flags_t;
430 
431 
432 /*
433  * Zsecurity config to enable strict free of iokit objects to zone
434  * or heap they were allocated from.
435  *
436  * Turn ZSECURITY_OPTIONS_STRICT_IOKIT_FREE off on x86 so as not
437  * not break third party kexts that haven't yet been recompiled
438  * to use the new iokit macros.
439  */
440 #if XNU_PLATFORM_MacOSX && __x86_64__
441 #   define ZSECURITY_CONFIG_STRICT_IOKIT_FREE           OFF
442 #else
443 #   define ZSECURITY_CONFIG_STRICT_IOKIT_FREE           ON
444 #endif
445 
446 /*
447  * Zsecurity config to enable the read-only allocator
448  */
449 #if KASAN_CLASSIC
450 #   define ZSECURITY_CONFIG_READ_ONLY                   OFF
451 #else
452 #   define ZSECURITY_CONFIG_READ_ONLY                   ON
453 #endif
454 
455 /*
456  * Zsecurity config to enable making heap feng-shui
457  * less reliable.
458  */
459 #if KASAN_CLASSIC
460 #   define ZSECURITY_CONFIG_SAD_FENG_SHUI               OFF
461 #   define ZSECURITY_CONFIG_GENERAL_SUBMAPS             1
462 #else
463 #   define ZSECURITY_CONFIG_SAD_FENG_SHUI               ON
464 #   define ZSECURITY_CONFIG_GENERAL_SUBMAPS             4
465 #endif
466 
467 /*
468  * Zsecurity config to enable adjusting of elements
469  * with PGZ-OOB to right-align them in their space.
470  */
471 #if KASAN || defined(__x86_64__) || CONFIG_KERNEL_TAGGING
472 #   define ZSECURITY_CONFIG_PGZ_OOB_ADJUST              OFF
473 #else
474 #   define ZSECURITY_CONFIG_PGZ_OOB_ADJUST              ON
475 #endif
476 
477 /*
478  * Zsecurity config to enable kalloc type segregation
479  */
480 #if XNU_TARGET_OS_WATCH || KASAN_CLASSIC
481 #   define ZSECURITY_CONFIG_KT_BUDGET                   120
482 #   define ZSECURITY_CONFIG_KT_VAR_BUDGET               6
483 #else
484 #   define ZSECURITY_CONFIG_KT_BUDGET                   260
485 #   define ZSECURITY_CONFIG_KT_VAR_BUDGET               6
486 #endif
487 
488 
489 __options_decl(kalloc_type_options_t, uint64_t, {
490 	/*
491 	 * kalloc type option to switch default accounting to private.
492 	 */
493 	KT_OPTIONS_ACCT                         = 0x00000001,
494 	/*
495 	 * kalloc type option to print additional stats regarding zone
496 	 * budget distribution and signatures.
497 	 */
498 	KT_OPTIONS_DEBUG                        = 0x00000002,
499 	/*
500 	 * kalloc type option to allow loose freeing between heaps
501 	 */
502 	KT_OPTIONS_LOOSE_FREE                   = 0x00000004,
503 });
504 
505 __enum_decl(kt_var_heap_id_t, uint32_t, {
506 	/*
507 	 * Fake "data" heap used to link views of data-only allocation that
508 	 * have been redirected to KHEAP_DATA_BUFFERS
509 	 */
510 	KT_VAR_DATA_HEAP,
511 	/*
512 	 * Heaps for pointer arrays
513 	 */
514 	KT_VAR_PTR_HEAP0,
515 	KT_VAR_PTR_HEAP1,
516 	/*
517 	 * Indicating first additional heap added
518 	 */
519 	KT_VAR__FIRST_FLEXIBLE_HEAP,
520 });
521 
522 /*
523  * Zone submap indices
524  *
525  * Z_SUBMAP_IDX_VM
526  * this map has the special property that its allocations
527  * can be done without ever locking the submap, and doesn't use
528  * VM entries in the map (which limits certain VM map operations on it).
529  *
530  * On ILP32 a single zone lives here (the vm_map_entry_reserved_zone).
531  *
532  * On LP64 it is also used to restrict VM allocations on LP64 lower
533  * in the kernel VA space, for pointer packing purposes.
534  *
535  * Z_SUBMAP_IDX_GENERAL_{0,1,2,3}
536  * used for unrestricted allocations
537  *
538  * Z_SUBMAP_IDX_DATA
539  * used to sequester bags of bytes from all other allocations and allow VA reuse
540  * within the map
541  *
542  * Z_SUBMAP_IDX_READ_ONLY
543  * used for the read-only allocator
544  */
545 __enum_decl(zone_submap_idx_t, uint32_t, {
546 	Z_SUBMAP_IDX_VM,
547 	Z_SUBMAP_IDX_READ_ONLY,
548 	Z_SUBMAP_IDX_GENERAL_0,
549 #if ZSECURITY_CONFIG(SAD_FENG_SHUI)
550 	Z_SUBMAP_IDX_GENERAL_1,
551 	Z_SUBMAP_IDX_GENERAL_2,
552 	Z_SUBMAP_IDX_GENERAL_3,
553 #endif /* ZSECURITY_CONFIG(SAD_FENG_SHUI) */
554 	Z_SUBMAP_IDX_DATA,
555 
556 	Z_SUBMAP_IDX_COUNT,
557 });
558 
559 #define KALLOC_MINALIGN     (1 << KALLOC_LOG2_MINALIGN)
560 
561 /*
562  * Variable kalloc_type heap config
563  */
564 struct kheap_info {
565 	zone_id_t               kh_zstart;
566 	kalloc_heap_t           kh_views;
567 	kalloc_type_var_view_t  kt_views;
568 };
569 typedef union kalloc_type_views {
570 	struct kalloc_type_view     *ktv_fixed;
571 	struct kalloc_type_var_view *ktv_var;
572 } kalloc_type_views_t;
573 
574 #define KT_VAR_MAX_HEAPS 8
575 #define MAX_ZONES       690
576 extern struct kheap_info        kalloc_type_heap_array[KT_VAR_MAX_HEAPS];
577 extern zone_id_t _Atomic        num_zones;
578 extern uint32_t                 zone_view_count;
579 extern struct zone              zone_array[MAX_ZONES];
580 extern struct zone_size_params  zone_ro_size_params[ZONE_ID__LAST_RO + 1];
581 extern zone_security_flags_t    zone_security_array[];
582 extern const char * const       kalloc_heap_names[KHEAP_ID_COUNT];
583 extern mach_memory_info_t      *panic_kext_memory_info;
584 extern vm_size_t                panic_kext_memory_size;
585 extern vm_offset_t              panic_fault_address;
586 extern uint16_t                 _zc_mag_size;
587 
588 #define zone_index_foreach(i) \
589 	for (zone_id_t i = 1, num_zones_##i = os_atomic_load(&num_zones, acquire); \
590 	    i < num_zones_##i; i++)
591 
592 #define zone_foreach(z) \
593 	for (zone_t z = &zone_array[1], \
594 	    last_zone_##z = &zone_array[os_atomic_load(&num_zones, acquire)]; \
595 	    z < last_zone_##z; z++)
596 
597 __abortlike
598 extern void zone_invalid_panic(zone_t zone);
599 
600 __pure2
601 static inline zone_id_t
zone_index(zone_t z)602 zone_index(zone_t z)
603 {
604 	unsigned long delta;
605 	uint64_t quo;
606 
607 	delta = (unsigned long)z - (unsigned long)zone_array;
608 	if (delta >= MAX_ZONES * sizeof(*z)) {
609 		zone_invalid_panic(z);
610 	}
611 	quo = Z_FAST_QUO(delta, Z_MAGIC_QUO(sizeof(*z)));
612 	__builtin_assume(quo < MAX_ZONES);
613 	return (zone_id_t)quo;
614 }
615 
616 __pure2
617 static inline bool
zone_is_ro(zone_t zone)618 zone_is_ro(zone_t zone)
619 {
620 	return zone >= &zone_array[ZONE_ID__FIRST_RO] &&
621 	       zone <= &zone_array[ZONE_ID__LAST_RO];
622 }
623 
624 static inline bool
zone_addr_size_crosses_page(mach_vm_address_t addr,mach_vm_size_t size)625 zone_addr_size_crosses_page(mach_vm_address_t addr, mach_vm_size_t size)
626 {
627 	return atop(addr ^ (addr + size - 1)) != 0;
628 }
629 
630 __pure2
631 static inline uint16_t
zone_elem_redzone(zone_t zone)632 zone_elem_redzone(zone_t zone)
633 {
634 #if KASAN_CLASSIC
635 	return zone->z_kasan_redzone;
636 #else
637 	(void)zone;
638 	return 0;
639 #endif
640 }
641 
642 __pure2
643 static inline uint16_t
zone_elem_inner_offs(zone_t zone)644 zone_elem_inner_offs(zone_t zone)
645 {
646 	return zone->z_elem_offs;
647 }
648 
649 __pure2
650 static inline uint16_t
zone_elem_outer_offs(zone_t zone)651 zone_elem_outer_offs(zone_t zone)
652 {
653 	return zone_elem_inner_offs(zone) - zone_elem_redzone(zone);
654 }
655 
656 __pure2
657 static inline vm_offset_t
zone_elem_inner_size(zone_t zone)658 zone_elem_inner_size(zone_t zone)
659 {
660 	return zone->z_elem_size;
661 }
662 
663 __pure2
664 static inline vm_offset_t
zone_elem_outer_size(zone_t zone)665 zone_elem_outer_size(zone_t zone)
666 {
667 	return zone_elem_inner_size(zone) + zone_elem_redzone(zone);
668 }
669 
670 __pure2
671 static inline zone_security_flags_t
zone_security_config(zone_t z)672 zone_security_config(zone_t z)
673 {
674 	zone_id_t zid = zone_index(z);
675 	return zone_security_array[zid];
676 }
677 
678 static inline uint32_t
zone_count_free(zone_t zone)679 zone_count_free(zone_t zone)
680 {
681 	return zone->z_elems_free + zone->z_recirc.zd_full * _zc_mag_size;
682 }
683 
684 static inline uint32_t
zone_count_allocated(zone_t zone)685 zone_count_allocated(zone_t zone)
686 {
687 	return zone->z_elems_avail - zone_count_free(zone);
688 }
689 
690 static inline vm_size_t
zone_scale_for_percpu(zone_t zone,vm_size_t size)691 zone_scale_for_percpu(zone_t zone, vm_size_t size)
692 {
693 	if (zone->z_percpu) {
694 		size *= zpercpu_count();
695 	}
696 	return size;
697 }
698 
699 static inline vm_size_t
zone_size_wired(zone_t zone)700 zone_size_wired(zone_t zone)
701 {
702 	/*
703 	 * this either require the zone lock,
704 	 * or to be used for statistics purposes only.
705 	 */
706 	vm_size_t size = ptoa(os_atomic_load(&zone->z_wired_cur, relaxed));
707 	return zone_scale_for_percpu(zone, size);
708 }
709 
710 static inline vm_size_t
zone_size_free(zone_t zone)711 zone_size_free(zone_t zone)
712 {
713 	return zone_scale_for_percpu(zone,
714 	           zone_elem_inner_size(zone) * zone_count_free(zone));
715 }
716 
717 /* Under KASAN builds, this also accounts for quarantined elements. */
718 static inline vm_size_t
zone_size_allocated(zone_t zone)719 zone_size_allocated(zone_t zone)
720 {
721 	return zone_scale_for_percpu(zone,
722 	           zone_elem_inner_size(zone) * zone_count_allocated(zone));
723 }
724 
725 static inline vm_size_t
zone_size_wasted(zone_t zone)726 zone_size_wasted(zone_t zone)
727 {
728 	return zone_size_wired(zone) - zone_scale_for_percpu(zone,
729 	           zone_elem_outer_size(zone) * zone->z_elems_avail);
730 }
731 
732 __pure2
733 static inline bool
zone_exhaustible(zone_t zone)734 zone_exhaustible(zone_t zone)
735 {
736 	return zone->z_wired_max != ~0u;
737 }
738 
739 __pure2
740 static inline bool
zone_exhausted(zone_t zone)741 zone_exhausted(zone_t zone)
742 {
743 	return zone->z_wired_cur >= zone->z_wired_max;
744 }
745 
746 /*
747  * Set and get the signature equivalance for the given zone
748  */
749 extern void zone_set_sig_eq(zone_t zone, zone_id_t sig_eq);
750 extern zone_id_t zone_get_sig_eq(zone_t zone);
751 /*
752  * Return the accumulated allocated memory on the given zone stats
753  */
754 static inline vm_size_t
zone_stats_get_mem_allocated(zone_stats_t stats)755 zone_stats_get_mem_allocated(zone_stats_t stats)
756 {
757 	return stats->zs_mem_allocated;
758 }
759 
760 /*
761  * For sysctl kern.zones_collectable_bytes used by memory_maintenance to check if a
762  * userspace reboot is needed. The only other way to query for this information
763  * is via mach_memory_info() which is unavailable on release kernels.
764  */
765 extern uint64_t get_zones_collectable_bytes(void);
766 
767 /*!
768  * @enum zone_gc_level_t
769  *
770  * @const ZONE_GC_TRIM
771  * Request a trimming GC: it will trim allocations in excess
772  * of the working set size estimate only.
773  *
774  * @const ZONE_GC_DRAIN
775  * Request a draining GC: this is an aggressive mode that will
776  * cause all caches to be drained and all free pages returned to the system.
777  *
778  * @const ZONE_GC_JETSAM
779  * Request to consider a jetsam, and then fallback to @c ZONE_GC_TRIM or
780  * @c ZONE_GC_DRAIN depending on the state of the zone map.
781  * To avoid deadlocks, only @c vm_pageout_garbage_collect() should ever
782  * request a @c ZONE_GC_JETSAM level.
783  */
784 __enum_closed_decl(zone_gc_level_t, uint32_t, {
785 	ZONE_GC_TRIM,
786 	ZONE_GC_DRAIN,
787 	ZONE_GC_JETSAM,
788 });
789 
790 /*!
791  * @function zone_gc
792  *
793  * @brief
794  * Reduces memory used by zones by trimming caches and freelists.
795  *
796  * @discussion
797  * @c zone_gc() is called:
798  * - by the pageout daemon when the system needs more free pages.
799  * - by the VM when contiguous page allocation requests get stuck
800  *   (see vm_page_find_contiguous()).
801  *
802  * @param level         The zone GC level requested.
803  */
804 extern void     zone_gc(zone_gc_level_t level);
805 
806 extern void     zone_gc_trim(void);
807 extern void     zone_gc_drain(void);
808 
809 #define ZONE_WSS_UPDATE_PERIOD  15
810 /*!
811  * @function compute_zone_working_set_size
812  *
813  * @brief
814  * Recomputes the working set size for every zone
815  *
816  * @discussion
817  * This runs about every @c ZONE_WSS_UPDATE_PERIOD seconds (10),
818  * computing an exponential moving average with a weight of 75%,
819  * so that the history of the last minute is the dominating factor.
820  */
821 extern void     compute_zone_working_set_size(void *);
822 
823 /* Debug logging for zone-map-exhaustion jetsams. */
824 extern void     get_zone_map_size(uint64_t *current_size, uint64_t *capacity);
825 extern void     get_largest_zone_info(char *zone_name, size_t zone_name_len, uint64_t *zone_size);
826 
827 /* Bootstrap zone module (create zone zone) */
828 extern void     zone_bootstrap(void);
829 
830 /* Force-enable caching on a zone, generally unsafe to call directly */
831 extern void     zone_enable_caching(zone_t zone);
832 
833 /*!
834  * @function zone_early_mem_init
835  *
836  * @brief
837  * Steal memory from pmap (prior to initialization of zalloc)
838  * for the special vm zones that allow bootstrap memory and store
839  * the range so as to facilitate range checking in zfree.
840  *
841  * @param size              the size to steal (must be a page multiple)
842  */
843 __startup_func
844 extern vm_offset_t zone_early_mem_init(
845 	vm_size_t       size);
846 
847 /*!
848  * @function zone_get_early_alloc_size
849  *
850  * @brief
851  * Compute the correct size (greater than @c ptoa(min_pages)) that is a multiple
852  * of the allocation granule for the zone with the given creation flags and
853  * element size.
854  */
855 __startup_func
856 extern vm_size_t zone_get_early_alloc_size(
857 	const char          *name __unused,
858 	vm_size_t            elem_size,
859 	zone_create_flags_t  flags,
860 	vm_size_t            min_elems);
861 
862 /*!
863  * @function zone_cram_early
864  *
865  * @brief
866  * Cram memory allocated with @c zone_early_mem_init() into a zone.
867  *
868  * @param zone          The zone to cram memory into.
869  * @param newmem        The base address for the memory to cram.
870  * @param size          The size of the memory to cram into the zone.
871  */
872 __startup_func
873 extern void     zone_cram_early(
874 	zone_t          zone,
875 	vm_offset_t     newmem,
876 	vm_size_t       size);
877 
878 extern bool     zone_maps_owned(
879 	vm_address_t    addr,
880 	vm_size_t       size);
881 
882 #if KASAN_LIGHT
883 extern bool     kasan_zone_maps_owned(
884 	vm_address_t    addr,
885 	vm_size_t       size);
886 #endif /* KASAN_LIGHT */
887 
888 extern void     zone_map_sizes(
889 	vm_map_size_t  *psize,
890 	vm_map_size_t  *pfree,
891 	vm_map_size_t  *plargest_free);
892 
893 extern bool
894 zone_map_nearing_exhaustion(void);
895 
896 static inline vm_tag_t
zalloc_flags_get_tag(zalloc_flags_t flags)897 zalloc_flags_get_tag(zalloc_flags_t flags)
898 {
899 	return (vm_tag_t)((flags & Z_VM_TAG_MASK) >> Z_VM_TAG_SHIFT);
900 }
901 
902 extern struct kalloc_result zalloc_ext(
903 	zone_t          zone,
904 	zone_stats_t    zstats,
905 	zalloc_flags_t  flags);
906 
907 #if KASAN
908 #define ZFREE_PACK_SIZE(esize, usize)   (((uint64_t)(usize) << 32) | (esize))
909 #define ZFREE_ELEM_SIZE(combined)       ((uint32_t)(combined))
910 #define ZFREE_USER_SIZE(combined)       ((combined) >> 32)
911 #else
912 #define ZFREE_PACK_SIZE(esize, usize)   (esize)
913 #define ZFREE_ELEM_SIZE(combined)       (combined)
914 #endif
915 
916 extern void     zfree_ext(
917 	zone_t          zone,
918 	zone_stats_t    zstats,
919 	void           *addr,
920 	uint64_t        combined_size);
921 
922 extern zone_id_t zone_id_for_element(
923 	void           *addr,
924 	vm_size_t       esize);
925 
926 #if ZSECURITY_CONFIG(PGZ_OOB_ADJUST)
927 extern void *zone_element_pgz_oob_adjust(
928 	void           *addr,
929 	vm_size_t       req_size,
930 	vm_size_t       elem_size);
931 #endif /* !ZSECURITY_CONFIG(PGZ_OOB_ADJUST) */
932 
933 extern void zone_element_bounds_check(
934 	vm_address_t    addr,
935 	vm_size_t       len);
936 
937 extern vm_size_t zone_element_size(
938 	void           *addr,
939 	zone_t         *z,
940 	bool            clear_oob,
941 	vm_offset_t    *oob_offs);
942 
943 /*!
944  * @function zone_spans_ro_va
945  *
946  * @abstract
947  * This function is used to check whether the specified address range
948  * spans through the read-only zone range.
949  *
950  * @discussion
951  * This only checks for the range specified within ZONE_ADDR_READONLY.
952  * The parameters addr_start and addr_end are stripped off of PAC bits
953  * before the check is made.
954  */
955 extern bool zone_spans_ro_va(
956 	vm_offset_t     addr_start,
957 	vm_offset_t     addr_end);
958 
959 /*!
960  * @function __zalloc_ro_mut_atomic
961  *
962  * @abstract
963  * This function is called from the pmap to perform the specified atomic
964  * operation on memory from the read-only allocator.
965  *
966  * @discussion
967  * This function is for internal use only and should not be called directly.
968  */
969 static inline uint64_t
__zalloc_ro_mut_atomic(vm_offset_t dst,zro_atomic_op_t op,uint64_t value)970 __zalloc_ro_mut_atomic(vm_offset_t dst, zro_atomic_op_t op, uint64_t value)
971 {
972 #define __ZALLOC_RO_MUT_OP(op, op2) \
973 	case ZRO_ATOMIC_##op##_8: \
974 	        return os_atomic_##op2((uint8_t *)dst, (uint8_t)value, seq_cst); \
975 	case ZRO_ATOMIC_##op##_16: \
976 	        return os_atomic_##op2((uint16_t *)dst, (uint16_t)value, seq_cst); \
977 	case ZRO_ATOMIC_##op##_32: \
978 	        return os_atomic_##op2((uint32_t *)dst, (uint32_t)value, seq_cst); \
979 	case ZRO_ATOMIC_##op##_64: \
980 	        return os_atomic_##op2((uint64_t *)dst, (uint64_t)value, seq_cst)
981 
982 	switch (op) {
983 		__ZALLOC_RO_MUT_OP(OR, or_orig);
984 		__ZALLOC_RO_MUT_OP(XOR, xor_orig);
985 		__ZALLOC_RO_MUT_OP(AND, and_orig);
986 		__ZALLOC_RO_MUT_OP(ADD, add_orig);
987 		__ZALLOC_RO_MUT_OP(XCHG, xchg);
988 	default:
989 		panic("%s: Invalid atomic operation: %d", __func__, op);
990 	}
991 
992 #undef __ZALLOC_RO_MUT_OP
993 }
994 
995 /*!
996  * @function zone_owns
997  *
998  * @abstract
999  * This function is a soft version of zone_require that checks if a given
1000  * pointer belongs to the specified zone and should not be used outside
1001  * allocator code.
1002  *
1003  * @discussion
1004  * Note that zone_owns() can only work with:
1005  * - zones not allowing foreign memory
1006  * - zones in the general submap.
1007  *
1008  * @param zone          the zone the address needs to belong to.
1009  * @param addr          the element address to check.
1010  */
1011 extern bool     zone_owns(
1012 	zone_t          zone,
1013 	void           *addr);
1014 
1015 /**!
1016  * @function zone_submap
1017  *
1018  * @param zsflags       the security flags of a specified zone.
1019  * @returns             the zone (sub)map this zone allocates from.
1020  */
1021 __pure2
1022 extern vm_map_t zone_submap(
1023 	zone_security_flags_t   zsflags);
1024 
1025 #ifndef VM_TAG_SIZECLASSES
1026 #error MAX_TAG_ZONES
1027 #endif
1028 #if VM_TAG_SIZECLASSES
1029 
1030 extern uint16_t zone_index_from_tag_index(
1031 	uint32_t        tag_zone_index);
1032 
1033 #endif /* VM_TAG_SIZECLASSES */
1034 
1035 extern lck_grp_t zone_locks_grp;
1036 
1037 static inline void
zone_lock(zone_t zone)1038 zone_lock(zone_t zone)
1039 {
1040 #if KASAN_FAKESTACK
1041 	spl_t s = 0;
1042 	if (zone->z_kasan_fakestacks) {
1043 		s = splsched();
1044 	}
1045 #endif /* KASAN_FAKESTACK */
1046 	hw_lck_ticket_lock(&zone->z_lock, &zone_locks_grp);
1047 #if KASAN_FAKESTACK
1048 	zone->z_kasan_spl = s;
1049 #endif /* KASAN_FAKESTACK */
1050 }
1051 
1052 static inline void
zone_unlock(zone_t zone)1053 zone_unlock(zone_t zone)
1054 {
1055 #if KASAN_FAKESTACK
1056 	spl_t s = zone->z_kasan_spl;
1057 	zone->z_kasan_spl = 0;
1058 #endif /* KASAN_FAKESTACK */
1059 	hw_lck_ticket_unlock(&zone->z_lock);
1060 #if KASAN_FAKESTACK
1061 	if (zone->z_kasan_fakestacks) {
1062 		splx(s);
1063 	}
1064 #endif /* KASAN_FAKESTACK */
1065 }
1066 
1067 #define MAX_ZONE_NAME   32      /* max length of a zone name we can take from the boot-args */
1068 
1069 int track_this_zone(const char *zonename, const char *logname);
1070 extern bool panic_include_kalloc_types;
1071 extern zone_t kalloc_type_src_zone;
1072 extern zone_t kalloc_type_dst_zone;
1073 
1074 #if DEBUG || DEVELOPMENT
1075 extern vm_size_t zone_element_info(void *addr, vm_tag_t * ptag);
1076 #endif /* DEBUG || DEVELOPMENT */
1077 
1078 #pragma GCC visibility pop
1079 
1080 __END_DECLS
1081 
1082 #endif  /* _KERN_ZALLOC_INTERNAL_H_ */
1083