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subr_pool.c revision 1.289
      1  1.289  riastrad /*	$NetBSD: subr_pool.c,v 1.289 2023/04/09 12:16:34 riastradh Exp $	*/
      2    1.1        pk 
      3  1.229      maxv /*
      4  1.271        ad  * Copyright (c) 1997, 1999, 2000, 2002, 2007, 2008, 2010, 2014, 2015, 2018,
      5  1.279   thorpej  *     2020, 2021 The NetBSD Foundation, Inc.
      6    1.1        pk  * All rights reserved.
      7    1.1        pk  *
      8    1.1        pk  * This code is derived from software contributed to The NetBSD Foundation
      9   1.20   thorpej  * by Paul Kranenburg; by Jason R. Thorpe of the Numerical Aerospace
     10  1.204      maxv  * Simulation Facility, NASA Ames Research Center; by Andrew Doran, and by
     11  1.204      maxv  * Maxime Villard.
     12    1.1        pk  *
     13    1.1        pk  * Redistribution and use in source and binary forms, with or without
     14    1.1        pk  * modification, are permitted provided that the following conditions
     15    1.1        pk  * are met:
     16    1.1        pk  * 1. Redistributions of source code must retain the above copyright
     17    1.1        pk  *    notice, this list of conditions and the following disclaimer.
     18    1.1        pk  * 2. Redistributions in binary form must reproduce the above copyright
     19    1.1        pk  *    notice, this list of conditions and the following disclaimer in the
     20    1.1        pk  *    documentation and/or other materials provided with the distribution.
     21    1.1        pk  *
     22    1.1        pk  * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
     23    1.1        pk  * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
     24    1.1        pk  * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     25    1.1        pk  * PURPOSE ARE DISCLAIMED.  IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
     26    1.1        pk  * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     27    1.1        pk  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     28    1.1        pk  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
     29    1.1        pk  * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
     30    1.1        pk  * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
     31    1.1        pk  * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
     32    1.1        pk  * POSSIBILITY OF SUCH DAMAGE.
     33    1.1        pk  */
     34   1.64     lukem 
     35   1.64     lukem #include <sys/cdefs.h>
     36  1.289  riastrad __KERNEL_RCSID(0, "$NetBSD: subr_pool.c,v 1.289 2023/04/09 12:16:34 riastradh Exp $");
     37   1.24    scottr 
     38  1.205     pooka #ifdef _KERNEL_OPT
     39  1.141      yamt #include "opt_ddb.h"
     40   1.28   thorpej #include "opt_lockdebug.h"
     41  1.249      maxv #include "opt_pool.h"
     42  1.205     pooka #endif
     43    1.1        pk 
     44    1.1        pk #include <sys/param.h>
     45    1.1        pk #include <sys/systm.h>
     46  1.203     joerg #include <sys/sysctl.h>
     47  1.135      yamt #include <sys/bitops.h>
     48    1.1        pk #include <sys/proc.h>
     49    1.1        pk #include <sys/errno.h>
     50    1.1        pk #include <sys/kernel.h>
     51  1.191      para #include <sys/vmem.h>
     52    1.1        pk #include <sys/pool.h>
     53   1.20   thorpej #include <sys/syslog.h>
     54  1.125        ad #include <sys/debug.h>
     55  1.271        ad #include <sys/lock.h>
     56  1.134        ad #include <sys/lockdebug.h>
     57  1.134        ad #include <sys/xcall.h>
     58  1.134        ad #include <sys/cpu.h>
     59  1.145        ad #include <sys/atomic.h>
     60  1.224      maxv #include <sys/asan.h>
     61  1.262      maxv #include <sys/msan.h>
     62  1.270      maxv #include <sys/fault.h>
     63    1.3        pk 
     64  1.187  uebayasi #include <uvm/uvm_extern.h>
     65    1.3        pk 
     66    1.1        pk /*
     67    1.1        pk  * Pool resource management utility.
     68    1.3        pk  *
     69   1.88       chs  * Memory is allocated in pages which are split into pieces according to
     70   1.88       chs  * the pool item size. Each page is kept on one of three lists in the
     71   1.88       chs  * pool structure: `pr_emptypages', `pr_fullpages' and `pr_partpages',
     72   1.88       chs  * for empty, full and partially-full pages respectively. The individual
     73   1.88       chs  * pool items are on a linked list headed by `ph_itemlist' in each page
     74   1.88       chs  * header. The memory for building the page list is either taken from
     75   1.88       chs  * the allocated pages themselves (for small pool items) or taken from
     76   1.88       chs  * an internal pool of page headers (`phpool').
     77    1.1        pk  */
     78    1.1        pk 
     79  1.221      para /* List of all pools. Non static as needed by 'vmstat -m' */
     80  1.202       abs TAILQ_HEAD(, pool) pool_head = TAILQ_HEAD_INITIALIZER(pool_head);
     81  1.134        ad 
     82    1.3        pk /* Private pool for page header structures */
     83   1.97      yamt #define	PHPOOL_MAX	8
     84   1.97      yamt static struct pool phpool[PHPOOL_MAX];
     85  1.135      yamt #define	PHPOOL_FREELIST_NELEM(idx) \
     86  1.256      maxv 	(((idx) == 0) ? BITMAP_MIN_SIZE : BITMAP_SIZE * (1 << (idx)))
     87    1.3        pk 
     88  1.262      maxv #if !defined(KMSAN) && (defined(DIAGNOSTIC) || defined(KASAN))
     89  1.224      maxv #define POOL_REDZONE
     90  1.224      maxv #endif
     91  1.224      maxv 
     92  1.268      maxv #if defined(POOL_QUARANTINE)
     93  1.268      maxv #define POOL_NOCACHE
     94  1.268      maxv #endif
     95  1.268      maxv 
     96  1.204      maxv #ifdef POOL_REDZONE
     97  1.224      maxv # ifdef KASAN
     98  1.224      maxv #  define POOL_REDZONE_SIZE 8
     99  1.224      maxv # else
    100  1.224      maxv #  define POOL_REDZONE_SIZE 2
    101  1.224      maxv # endif
    102  1.204      maxv static void pool_redzone_init(struct pool *, size_t);
    103  1.204      maxv static void pool_redzone_fill(struct pool *, void *);
    104  1.204      maxv static void pool_redzone_check(struct pool *, void *);
    105  1.229      maxv static void pool_cache_redzone_check(pool_cache_t, void *);
    106  1.204      maxv #else
    107  1.229      maxv # define pool_redzone_init(pp, sz)		__nothing
    108  1.229      maxv # define pool_redzone_fill(pp, ptr)		__nothing
    109  1.229      maxv # define pool_redzone_check(pp, ptr)		__nothing
    110  1.229      maxv # define pool_cache_redzone_check(pc, ptr)	__nothing
    111  1.204      maxv #endif
    112  1.204      maxv 
    113  1.262      maxv #ifdef KMSAN
    114  1.262      maxv static inline void pool_get_kmsan(struct pool *, void *);
    115  1.262      maxv static inline void pool_put_kmsan(struct pool *, void *);
    116  1.262      maxv static inline void pool_cache_get_kmsan(pool_cache_t, void *);
    117  1.262      maxv static inline void pool_cache_put_kmsan(pool_cache_t, void *);
    118  1.262      maxv #else
    119  1.262      maxv #define pool_get_kmsan(pp, ptr)		__nothing
    120  1.262      maxv #define pool_put_kmsan(pp, ptr)		__nothing
    121  1.262      maxv #define pool_cache_get_kmsan(pc, ptr)	__nothing
    122  1.262      maxv #define pool_cache_put_kmsan(pc, ptr)	__nothing
    123  1.262      maxv #endif
    124  1.262      maxv 
    125  1.249      maxv #ifdef POOL_QUARANTINE
    126  1.249      maxv static void pool_quarantine_init(struct pool *);
    127  1.249      maxv static void pool_quarantine_flush(struct pool *);
    128  1.249      maxv static bool pool_put_quarantine(struct pool *, void *,
    129  1.249      maxv     struct pool_pagelist *);
    130  1.249      maxv #else
    131  1.249      maxv #define pool_quarantine_init(a)			__nothing
    132  1.249      maxv #define pool_quarantine_flush(a)		__nothing
    133  1.249      maxv #define pool_put_quarantine(a, b, c)		false
    134  1.268      maxv #endif
    135  1.268      maxv 
    136  1.268      maxv #ifdef POOL_NOCACHE
    137  1.268      maxv static bool pool_cache_put_nocache(pool_cache_t, void *);
    138  1.268      maxv #else
    139  1.268      maxv #define pool_cache_put_nocache(a, b)		false
    140  1.249      maxv #endif
    141  1.249      maxv 
    142  1.261  christos #define NO_CTOR	__FPTRCAST(int (*)(void *, void *, int), nullop)
    143  1.261  christos #define NO_DTOR	__FPTRCAST(void (*)(void *, void *), nullop)
    144  1.261  christos 
    145  1.279   thorpej #define pc_has_pser(pc) (((pc)->pc_roflags & PR_PSERIALIZE) != 0)
    146  1.261  christos #define pc_has_ctor(pc) ((pc)->pc_ctor != NO_CTOR)
    147  1.261  christos #define pc_has_dtor(pc) ((pc)->pc_dtor != NO_DTOR)
    148  1.229      maxv 
    149  1.279   thorpej #define pp_has_pser(pp) (((pp)->pr_roflags & PR_PSERIALIZE) != 0)
    150  1.279   thorpej 
    151  1.279   thorpej #define pool_barrier()	xc_barrier(0)
    152  1.279   thorpej 
    153  1.258      maxv /*
    154  1.258      maxv  * Pool backend allocators.
    155  1.258      maxv  *
    156  1.258      maxv  * Each pool has a backend allocator that handles allocation, deallocation,
    157  1.258      maxv  * and any additional draining that might be needed.
    158  1.258      maxv  *
    159  1.258      maxv  * We provide two standard allocators:
    160  1.258      maxv  *
    161  1.258      maxv  *	pool_allocator_kmem - the default when no allocator is specified
    162  1.258      maxv  *
    163  1.258      maxv  *	pool_allocator_nointr - used for pools that will not be accessed
    164  1.258      maxv  *	in interrupt context.
    165  1.258      maxv  */
    166  1.258      maxv void *pool_page_alloc(struct pool *, int);
    167  1.258      maxv void pool_page_free(struct pool *, void *);
    168  1.258      maxv 
    169   1.98      yamt static void *pool_page_alloc_meta(struct pool *, int);
    170   1.98      yamt static void pool_page_free_meta(struct pool *, void *);
    171   1.98      yamt 
    172  1.258      maxv struct pool_allocator pool_allocator_kmem = {
    173  1.258      maxv 	.pa_alloc = pool_page_alloc,
    174  1.258      maxv 	.pa_free = pool_page_free,
    175  1.258      maxv 	.pa_pagesz = 0
    176  1.258      maxv };
    177  1.258      maxv 
    178  1.258      maxv struct pool_allocator pool_allocator_nointr = {
    179  1.258      maxv 	.pa_alloc = pool_page_alloc,
    180  1.258      maxv 	.pa_free = pool_page_free,
    181  1.258      maxv 	.pa_pagesz = 0
    182  1.258      maxv };
    183  1.258      maxv 
    184  1.134        ad struct pool_allocator pool_allocator_meta = {
    185  1.191      para 	.pa_alloc = pool_page_alloc_meta,
    186  1.191      para 	.pa_free = pool_page_free_meta,
    187  1.191      para 	.pa_pagesz = 0
    188   1.98      yamt };
    189   1.98      yamt 
    190  1.208       chs #define POOL_ALLOCATOR_BIG_BASE 13
    191  1.258      maxv static struct pool_allocator pool_allocator_big[] = {
    192  1.258      maxv 	{
    193  1.258      maxv 		.pa_alloc = pool_page_alloc,
    194  1.258      maxv 		.pa_free = pool_page_free,
    195  1.258      maxv 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 0),
    196  1.258      maxv 	},
    197  1.258      maxv 	{
    198  1.258      maxv 		.pa_alloc = pool_page_alloc,
    199  1.258      maxv 		.pa_free = pool_page_free,
    200  1.258      maxv 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 1),
    201  1.258      maxv 	},
    202  1.258      maxv 	{
    203  1.258      maxv 		.pa_alloc = pool_page_alloc,
    204  1.258      maxv 		.pa_free = pool_page_free,
    205  1.258      maxv 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 2),
    206  1.258      maxv 	},
    207  1.258      maxv 	{
    208  1.258      maxv 		.pa_alloc = pool_page_alloc,
    209  1.258      maxv 		.pa_free = pool_page_free,
    210  1.258      maxv 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 3),
    211  1.258      maxv 	},
    212  1.258      maxv 	{
    213  1.258      maxv 		.pa_alloc = pool_page_alloc,
    214  1.258      maxv 		.pa_free = pool_page_free,
    215  1.258      maxv 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 4),
    216  1.258      maxv 	},
    217  1.258      maxv 	{
    218  1.258      maxv 		.pa_alloc = pool_page_alloc,
    219  1.258      maxv 		.pa_free = pool_page_free,
    220  1.258      maxv 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 5),
    221  1.258      maxv 	},
    222  1.258      maxv 	{
    223  1.258      maxv 		.pa_alloc = pool_page_alloc,
    224  1.258      maxv 		.pa_free = pool_page_free,
    225  1.258      maxv 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 6),
    226  1.258      maxv 	},
    227  1.258      maxv 	{
    228  1.258      maxv 		.pa_alloc = pool_page_alloc,
    229  1.258      maxv 		.pa_free = pool_page_free,
    230  1.258      maxv 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 7),
    231  1.273  jdolecek 	},
    232  1.273  jdolecek 	{
    233  1.273  jdolecek 		.pa_alloc = pool_page_alloc,
    234  1.273  jdolecek 		.pa_free = pool_page_free,
    235  1.273  jdolecek 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 8),
    236  1.273  jdolecek 	},
    237  1.273  jdolecek 	{
    238  1.273  jdolecek 		.pa_alloc = pool_page_alloc,
    239  1.273  jdolecek 		.pa_free = pool_page_free,
    240  1.273  jdolecek 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 9),
    241  1.273  jdolecek 	},
    242  1.273  jdolecek 	{
    243  1.273  jdolecek 		.pa_alloc = pool_page_alloc,
    244  1.273  jdolecek 		.pa_free = pool_page_free,
    245  1.273  jdolecek 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 10),
    246  1.273  jdolecek 	},
    247  1.273  jdolecek 	{
    248  1.273  jdolecek 		.pa_alloc = pool_page_alloc,
    249  1.273  jdolecek 		.pa_free = pool_page_free,
    250  1.273  jdolecek 		.pa_pagesz = 1 << (POOL_ALLOCATOR_BIG_BASE + 11),
    251  1.258      maxv 	}
    252  1.258      maxv };
    253  1.258      maxv 
    254  1.208       chs static int pool_bigidx(size_t);
    255  1.208       chs 
    256    1.3        pk /* # of seconds to retain page after last use */
    257    1.3        pk int pool_inactive_time = 10;
    258    1.3        pk 
    259    1.3        pk /* Next candidate for drainage (see pool_drain()) */
    260  1.236      maxv static struct pool *drainpp;
    261   1.23   thorpej 
    262  1.134        ad /* This lock protects both pool_head and drainpp. */
    263  1.134        ad static kmutex_t pool_head_lock;
    264  1.134        ad static kcondvar_t pool_busy;
    265    1.3        pk 
    266  1.178      elad /* This lock protects initialization of a potentially shared pool allocator */
    267  1.178      elad static kmutex_t pool_allocator_lock;
    268  1.178      elad 
    269  1.245      maxv static unsigned int poolid_counter = 0;
    270  1.245      maxv 
    271  1.135      yamt typedef uint32_t pool_item_bitmap_t;
    272  1.135      yamt #define	BITMAP_SIZE	(CHAR_BIT * sizeof(pool_item_bitmap_t))
    273  1.135      yamt #define	BITMAP_MASK	(BITMAP_SIZE - 1)
    274  1.256      maxv #define	BITMAP_MIN_SIZE	(CHAR_BIT * sizeof(((struct pool_item_header *)NULL)->ph_u2))
    275   1.99      yamt 
    276    1.3        pk struct pool_item_header {
    277    1.3        pk 	/* Page headers */
    278   1.88       chs 	LIST_ENTRY(pool_item_header)
    279    1.3        pk 				ph_pagelist;	/* pool page list */
    280  1.245      maxv 	union {
    281  1.245      maxv 		/* !PR_PHINPAGE */
    282  1.245      maxv 		struct {
    283  1.245      maxv 			SPLAY_ENTRY(pool_item_header)
    284  1.245      maxv 				phu_node;	/* off-page page headers */
    285  1.245      maxv 		} phu_offpage;
    286  1.245      maxv 		/* PR_PHINPAGE */
    287  1.245      maxv 		struct {
    288  1.245      maxv 			unsigned int phu_poolid;
    289  1.245      maxv 		} phu_onpage;
    290  1.245      maxv 	} ph_u1;
    291  1.128  christos 	void *			ph_page;	/* this page's address */
    292  1.151      yamt 	uint32_t		ph_time;	/* last referenced */
    293  1.135      yamt 	uint16_t		ph_nmissing;	/* # of chunks in use */
    294  1.141      yamt 	uint16_t		ph_off;		/* start offset in page */
    295   1.97      yamt 	union {
    296  1.242      maxv 		/* !PR_USEBMAP */
    297   1.97      yamt 		struct {
    298  1.102       chs 			LIST_HEAD(, pool_item)
    299   1.97      yamt 				phu_itemlist;	/* chunk list for this page */
    300   1.97      yamt 		} phu_normal;
    301  1.242      maxv 		/* PR_USEBMAP */
    302   1.97      yamt 		struct {
    303  1.141      yamt 			pool_item_bitmap_t phu_bitmap[1];
    304   1.97      yamt 		} phu_notouch;
    305  1.245      maxv 	} ph_u2;
    306    1.3        pk };
    307  1.245      maxv #define ph_node		ph_u1.phu_offpage.phu_node
    308  1.245      maxv #define ph_poolid	ph_u1.phu_onpage.phu_poolid
    309  1.245      maxv #define ph_itemlist	ph_u2.phu_normal.phu_itemlist
    310  1.245      maxv #define ph_bitmap	ph_u2.phu_notouch.phu_bitmap
    311    1.3        pk 
    312  1.240      maxv #define PHSIZE	ALIGN(sizeof(struct pool_item_header))
    313  1.240      maxv 
    314  1.256      maxv CTASSERT(offsetof(struct pool_item_header, ph_u2) +
    315  1.256      maxv     BITMAP_MIN_SIZE / CHAR_BIT == sizeof(struct pool_item_header));
    316  1.256      maxv 
    317  1.229      maxv #if defined(DIAGNOSTIC) && !defined(KASAN)
    318  1.229      maxv #define POOL_CHECK_MAGIC
    319  1.229      maxv #endif
    320  1.229      maxv 
    321    1.1        pk struct pool_item {
    322  1.229      maxv #ifdef POOL_CHECK_MAGIC
    323   1.82   thorpej 	u_int pi_magic;
    324   1.33       chs #endif
    325  1.134        ad #define	PI_MAGIC 0xdeaddeadU
    326    1.3        pk 	/* Other entries use only this list entry */
    327  1.102       chs 	LIST_ENTRY(pool_item)	pi_list;
    328    1.3        pk };
    329    1.3        pk 
    330   1.53   thorpej #define	POOL_NEEDS_CATCHUP(pp)						\
    331  1.267       chs 	((pp)->pr_nitems < (pp)->pr_minitems ||				\
    332  1.267       chs 	 (pp)->pr_npages < (pp)->pr_minpages)
    333  1.253      maxv #define	POOL_OBJ_TO_PAGE(pp, v)						\
    334  1.253      maxv 	(void *)((uintptr_t)v & pp->pr_alloc->pa_pagemask)
    335   1.53   thorpej 
    336   1.43   thorpej /*
    337   1.43   thorpej  * Pool cache management.
    338   1.43   thorpej  *
    339   1.43   thorpej  * Pool caches provide a way for constructed objects to be cached by the
    340   1.43   thorpej  * pool subsystem.  This can lead to performance improvements by avoiding
    341   1.43   thorpej  * needless object construction/destruction; it is deferred until absolutely
    342   1.43   thorpej  * necessary.
    343   1.43   thorpej  *
    344  1.134        ad  * Caches are grouped into cache groups.  Each cache group references up
    345  1.134        ad  * to PCG_NUMOBJECTS constructed objects.  When a cache allocates an
    346  1.134        ad  * object from the pool, it calls the object's constructor and places it
    347  1.134        ad  * into a cache group.  When a cache group frees an object back to the
    348  1.134        ad  * pool, it first calls the object's destructor.  This allows the object
    349  1.134        ad  * to persist in constructed form while freed to the cache.
    350  1.134        ad  *
    351  1.134        ad  * The pool references each cache, so that when a pool is drained by the
    352  1.134        ad  * pagedaemon, it can drain each individual cache as well.  Each time a
    353  1.134        ad  * cache is drained, the most idle cache group is freed to the pool in
    354  1.134        ad  * its entirety.
    355   1.43   thorpej  *
    356  1.284    andvar  * Pool caches are laid on top of pools.  By layering them, we can avoid
    357   1.43   thorpej  * the complexity of cache management for pools which would not benefit
    358   1.43   thorpej  * from it.
    359   1.43   thorpej  */
    360   1.43   thorpej 
    361  1.142        ad static struct pool pcg_normal_pool;
    362  1.142        ad static struct pool pcg_large_pool;
    363  1.134        ad static struct pool cache_pool;
    364  1.134        ad static struct pool cache_cpu_pool;
    365    1.3        pk 
    366  1.271        ad static pcg_t *volatile pcg_large_cache __cacheline_aligned;
    367  1.271        ad static pcg_t *volatile pcg_normal_cache __cacheline_aligned;
    368  1.271        ad 
    369  1.145        ad /* List of all caches. */
    370  1.145        ad TAILQ_HEAD(,pool_cache) pool_cache_head =
    371  1.145        ad     TAILQ_HEAD_INITIALIZER(pool_cache_head);
    372  1.145        ad 
    373  1.162        ad int pool_cache_disable;		/* global disable for caching */
    374  1.169      yamt static const pcg_t pcg_dummy;	/* zero sized: always empty, yet always full */
    375  1.145        ad 
    376  1.271        ad static bool	pool_cache_put_slow(pool_cache_t, pool_cache_cpu_t *, int,
    377  1.162        ad 				    void *);
    378  1.271        ad static bool	pool_cache_get_slow(pool_cache_t, pool_cache_cpu_t *, int,
    379  1.162        ad 				    void **, paddr_t *, int);
    380  1.134        ad static void	pool_cache_cpu_init1(struct cpu_info *, pool_cache_t);
    381  1.271        ad static int	pool_cache_invalidate_groups(pool_cache_t, pcg_t *);
    382  1.175       jym static void	pool_cache_invalidate_cpu(pool_cache_t, u_int);
    383  1.196       jym static void	pool_cache_transfer(pool_cache_t);
    384  1.271        ad static int	pool_pcg_get(pcg_t *volatile *, pcg_t **);
    385  1.271        ad static int	pool_pcg_put(pcg_t *volatile *, pcg_t *);
    386  1.271        ad static pcg_t *	pool_pcg_trunc(pcg_t *volatile *);
    387    1.3        pk 
    388   1.42   thorpej static int	pool_catchup(struct pool *);
    389  1.128  christos static void	pool_prime_page(struct pool *, void *,
    390   1.55   thorpej 		    struct pool_item_header *);
    391   1.88       chs static void	pool_update_curpage(struct pool *);
    392   1.66   thorpej 
    393  1.113      yamt static int	pool_grow(struct pool *, int);
    394  1.117      yamt static void	*pool_allocator_alloc(struct pool *, int);
    395  1.117      yamt static void	pool_allocator_free(struct pool *, void *);
    396    1.3        pk 
    397   1.97      yamt static void pool_print_pagelist(struct pool *, struct pool_pagelist *,
    398  1.199  christos 	void (*)(const char *, ...) __printflike(1, 2));
    399   1.42   thorpej static void pool_print1(struct pool *, const char *,
    400  1.199  christos 	void (*)(const char *, ...) __printflike(1, 2));
    401    1.3        pk 
    402   1.88       chs static int pool_chk_page(struct pool *, const char *,
    403   1.88       chs 			 struct pool_item_header *);
    404   1.88       chs 
    405  1.234      maxv /* -------------------------------------------------------------------------- */
    406  1.234      maxv 
    407  1.135      yamt static inline unsigned int
    408  1.234      maxv pr_item_bitmap_index(const struct pool *pp, const struct pool_item_header *ph,
    409   1.97      yamt     const void *v)
    410   1.97      yamt {
    411   1.97      yamt 	const char *cp = v;
    412  1.135      yamt 	unsigned int idx;
    413   1.97      yamt 
    414  1.242      maxv 	KASSERT(pp->pr_roflags & PR_USEBMAP);
    415  1.128  christos 	idx = (cp - (char *)ph->ph_page - ph->ph_off) / pp->pr_size;
    416  1.237      maxv 
    417  1.237      maxv 	if (__predict_false(idx >= pp->pr_itemsperpage)) {
    418  1.237      maxv 		panic("%s: [%s] %u >= %u", __func__, pp->pr_wchan, idx,
    419  1.237      maxv 		    pp->pr_itemsperpage);
    420  1.237      maxv 	}
    421  1.237      maxv 
    422   1.97      yamt 	return idx;
    423   1.97      yamt }
    424   1.97      yamt 
    425  1.110     perry static inline void
    426  1.234      maxv pr_item_bitmap_put(const struct pool *pp, struct pool_item_header *ph,
    427   1.97      yamt     void *obj)
    428   1.97      yamt {
    429  1.234      maxv 	unsigned int idx = pr_item_bitmap_index(pp, ph, obj);
    430  1.135      yamt 	pool_item_bitmap_t *bitmap = ph->ph_bitmap + (idx / BITMAP_SIZE);
    431  1.223     kamil 	pool_item_bitmap_t mask = 1U << (idx & BITMAP_MASK);
    432   1.97      yamt 
    433  1.237      maxv 	if (__predict_false((*bitmap & mask) != 0)) {
    434  1.237      maxv 		panic("%s: [%s] %p already freed", __func__, pp->pr_wchan, obj);
    435  1.237      maxv 	}
    436  1.237      maxv 
    437  1.135      yamt 	*bitmap |= mask;
    438   1.97      yamt }
    439   1.97      yamt 
    440  1.110     perry static inline void *
    441  1.234      maxv pr_item_bitmap_get(const struct pool *pp, struct pool_item_header *ph)
    442   1.97      yamt {
    443  1.135      yamt 	pool_item_bitmap_t *bitmap = ph->ph_bitmap;
    444  1.135      yamt 	unsigned int idx;
    445  1.135      yamt 	int i;
    446   1.97      yamt 
    447  1.135      yamt 	for (i = 0; ; i++) {
    448  1.135      yamt 		int bit;
    449   1.97      yamt 
    450  1.135      yamt 		KASSERT((i * BITMAP_SIZE) < pp->pr_itemsperpage);
    451  1.135      yamt 		bit = ffs32(bitmap[i]);
    452  1.135      yamt 		if (bit) {
    453  1.135      yamt 			pool_item_bitmap_t mask;
    454  1.135      yamt 
    455  1.135      yamt 			bit--;
    456  1.135      yamt 			idx = (i * BITMAP_SIZE) + bit;
    457  1.222     kamil 			mask = 1U << bit;
    458  1.135      yamt 			KASSERT((bitmap[i] & mask) != 0);
    459  1.135      yamt 			bitmap[i] &= ~mask;
    460  1.135      yamt 			break;
    461  1.135      yamt 		}
    462  1.135      yamt 	}
    463  1.135      yamt 	KASSERT(idx < pp->pr_itemsperpage);
    464  1.128  christos 	return (char *)ph->ph_page + ph->ph_off + idx * pp->pr_size;
    465   1.97      yamt }
    466   1.97      yamt 
    467  1.135      yamt static inline void
    468  1.234      maxv pr_item_bitmap_init(const struct pool *pp, struct pool_item_header *ph)
    469  1.135      yamt {
    470  1.135      yamt 	pool_item_bitmap_t *bitmap = ph->ph_bitmap;
    471  1.135      yamt 	const int n = howmany(pp->pr_itemsperpage, BITMAP_SIZE);
    472  1.135      yamt 	int i;
    473  1.135      yamt 
    474  1.135      yamt 	for (i = 0; i < n; i++) {
    475  1.135      yamt 		bitmap[i] = (pool_item_bitmap_t)-1;
    476  1.135      yamt 	}
    477  1.135      yamt }
    478  1.135      yamt 
    479  1.234      maxv /* -------------------------------------------------------------------------- */
    480  1.234      maxv 
    481  1.234      maxv static inline void
    482  1.234      maxv pr_item_linkedlist_put(const struct pool *pp, struct pool_item_header *ph,
    483  1.234      maxv     void *obj)
    484  1.234      maxv {
    485  1.234      maxv 	struct pool_item *pi = obj;
    486  1.234      maxv 
    487  1.279   thorpej 	KASSERT(!pp_has_pser(pp));
    488  1.279   thorpej 
    489  1.234      maxv #ifdef POOL_CHECK_MAGIC
    490  1.234      maxv 	pi->pi_magic = PI_MAGIC;
    491  1.234      maxv #endif
    492  1.234      maxv 
    493  1.234      maxv 	if (pp->pr_redzone) {
    494  1.234      maxv 		/*
    495  1.234      maxv 		 * Mark the pool_item as valid. The rest is already
    496  1.234      maxv 		 * invalid.
    497  1.234      maxv 		 */
    498  1.248      maxv 		kasan_mark(pi, sizeof(*pi), sizeof(*pi), 0);
    499  1.234      maxv 	}
    500  1.234      maxv 
    501  1.234      maxv 	LIST_INSERT_HEAD(&ph->ph_itemlist, pi, pi_list);
    502  1.234      maxv }
    503  1.234      maxv 
    504  1.234      maxv static inline void *
    505  1.234      maxv pr_item_linkedlist_get(struct pool *pp, struct pool_item_header *ph)
    506  1.234      maxv {
    507  1.234      maxv 	struct pool_item *pi;
    508  1.234      maxv 	void *v;
    509  1.234      maxv 
    510  1.234      maxv 	v = pi = LIST_FIRST(&ph->ph_itemlist);
    511  1.234      maxv 	if (__predict_false(v == NULL)) {
    512  1.234      maxv 		mutex_exit(&pp->pr_lock);
    513  1.234      maxv 		panic("%s: [%s] page empty", __func__, pp->pr_wchan);
    514  1.234      maxv 	}
    515  1.234      maxv 	KASSERTMSG((pp->pr_nitems > 0),
    516  1.234      maxv 	    "%s: [%s] nitems %u inconsistent on itemlist",
    517  1.234      maxv 	    __func__, pp->pr_wchan, pp->pr_nitems);
    518  1.234      maxv #ifdef POOL_CHECK_MAGIC
    519  1.234      maxv 	KASSERTMSG((pi->pi_magic == PI_MAGIC),
    520  1.234      maxv 	    "%s: [%s] free list modified: "
    521  1.234      maxv 	    "magic=%x; page %p; item addr %p", __func__,
    522  1.234      maxv 	    pp->pr_wchan, pi->pi_magic, ph->ph_page, pi);
    523  1.234      maxv #endif
    524  1.234      maxv 
    525  1.234      maxv 	/*
    526  1.234      maxv 	 * Remove from item list.
    527  1.234      maxv 	 */
    528  1.234      maxv 	LIST_REMOVE(pi, pi_list);
    529  1.234      maxv 
    530  1.234      maxv 	return v;
    531  1.234      maxv }
    532  1.234      maxv 
    533  1.234      maxv /* -------------------------------------------------------------------------- */
    534  1.234      maxv 
    535  1.253      maxv static inline void
    536  1.253      maxv pr_phinpage_check(struct pool *pp, struct pool_item_header *ph, void *page,
    537  1.253      maxv     void *object)
    538  1.253      maxv {
    539  1.253      maxv 	if (__predict_false((void *)ph->ph_page != page)) {
    540  1.253      maxv 		panic("%s: [%s] item %p not part of pool", __func__,
    541  1.253      maxv 		    pp->pr_wchan, object);
    542  1.253      maxv 	}
    543  1.253      maxv 	if (__predict_false((char *)object < (char *)page + ph->ph_off)) {
    544  1.253      maxv 		panic("%s: [%s] item %p below item space", __func__,
    545  1.253      maxv 		    pp->pr_wchan, object);
    546  1.253      maxv 	}
    547  1.253      maxv 	if (__predict_false(ph->ph_poolid != pp->pr_poolid)) {
    548  1.253      maxv 		panic("%s: [%s] item %p poolid %u != %u", __func__,
    549  1.253      maxv 		    pp->pr_wchan, object, ph->ph_poolid, pp->pr_poolid);
    550  1.253      maxv 	}
    551  1.253      maxv }
    552  1.253      maxv 
    553  1.253      maxv static inline void
    554  1.253      maxv pc_phinpage_check(pool_cache_t pc, void *object)
    555  1.253      maxv {
    556  1.253      maxv 	struct pool_item_header *ph;
    557  1.253      maxv 	struct pool *pp;
    558  1.253      maxv 	void *page;
    559  1.253      maxv 
    560  1.253      maxv 	pp = &pc->pc_pool;
    561  1.253      maxv 	page = POOL_OBJ_TO_PAGE(pp, object);
    562  1.253      maxv 	ph = (struct pool_item_header *)page;
    563  1.253      maxv 
    564  1.253      maxv 	pr_phinpage_check(pp, ph, page, object);
    565  1.253      maxv }
    566  1.253      maxv 
    567  1.253      maxv /* -------------------------------------------------------------------------- */
    568  1.253      maxv 
    569  1.110     perry static inline int
    570   1.88       chs phtree_compare(struct pool_item_header *a, struct pool_item_header *b)
    571   1.88       chs {
    572  1.121      yamt 
    573  1.121      yamt 	/*
    574  1.236      maxv 	 * We consider pool_item_header with smaller ph_page bigger. This
    575  1.236      maxv 	 * unnatural ordering is for the benefit of pr_find_pagehead.
    576  1.121      yamt 	 */
    577   1.88       chs 	if (a->ph_page < b->ph_page)
    578  1.236      maxv 		return 1;
    579  1.121      yamt 	else if (a->ph_page > b->ph_page)
    580  1.236      maxv 		return -1;
    581   1.88       chs 	else
    582  1.236      maxv 		return 0;
    583   1.88       chs }
    584   1.88       chs 
    585   1.88       chs SPLAY_PROTOTYPE(phtree, pool_item_header, ph_node, phtree_compare);
    586   1.88       chs SPLAY_GENERATE(phtree, pool_item_header, ph_node, phtree_compare);
    587   1.88       chs 
    588  1.141      yamt static inline struct pool_item_header *
    589  1.141      yamt pr_find_pagehead_noalign(struct pool *pp, void *v)
    590  1.141      yamt {
    591  1.141      yamt 	struct pool_item_header *ph, tmp;
    592  1.141      yamt 
    593  1.141      yamt 	tmp.ph_page = (void *)(uintptr_t)v;
    594  1.141      yamt 	ph = SPLAY_FIND(phtree, &pp->pr_phtree, &tmp);
    595  1.141      yamt 	if (ph == NULL) {
    596  1.141      yamt 		ph = SPLAY_ROOT(&pp->pr_phtree);
    597  1.141      yamt 		if (ph != NULL && phtree_compare(&tmp, ph) >= 0) {
    598  1.141      yamt 			ph = SPLAY_NEXT(phtree, &pp->pr_phtree, ph);
    599  1.141      yamt 		}
    600  1.141      yamt 		KASSERT(ph == NULL || phtree_compare(&tmp, ph) < 0);
    601  1.141      yamt 	}
    602  1.141      yamt 
    603  1.141      yamt 	return ph;
    604  1.141      yamt }
    605  1.141      yamt 
    606    1.3        pk /*
    607  1.121      yamt  * Return the pool page header based on item address.
    608    1.3        pk  */
    609  1.110     perry static inline struct pool_item_header *
    610  1.121      yamt pr_find_pagehead(struct pool *pp, void *v)
    611    1.3        pk {
    612   1.88       chs 	struct pool_item_header *ph, tmp;
    613    1.3        pk 
    614  1.121      yamt 	if ((pp->pr_roflags & PR_NOALIGN) != 0) {
    615  1.141      yamt 		ph = pr_find_pagehead_noalign(pp, v);
    616  1.121      yamt 	} else {
    617  1.253      maxv 		void *page = POOL_OBJ_TO_PAGE(pp, v);
    618  1.121      yamt 		if ((pp->pr_roflags & PR_PHINPAGE) != 0) {
    619  1.241      maxv 			ph = (struct pool_item_header *)page;
    620  1.253      maxv 			pr_phinpage_check(pp, ph, page, v);
    621  1.121      yamt 		} else {
    622  1.121      yamt 			tmp.ph_page = page;
    623  1.121      yamt 			ph = SPLAY_FIND(phtree, &pp->pr_phtree, &tmp);
    624  1.121      yamt 		}
    625  1.121      yamt 	}
    626    1.3        pk 
    627  1.121      yamt 	KASSERT(ph == NULL || ((pp->pr_roflags & PR_PHINPAGE) != 0) ||
    628  1.128  christos 	    ((char *)ph->ph_page <= (char *)v &&
    629  1.128  christos 	    (char *)v < (char *)ph->ph_page + pp->pr_alloc->pa_pagesz));
    630   1.88       chs 	return ph;
    631    1.3        pk }
    632    1.3        pk 
    633  1.101   thorpej static void
    634  1.101   thorpej pr_pagelist_free(struct pool *pp, struct pool_pagelist *pq)
    635  1.101   thorpej {
    636  1.101   thorpej 	struct pool_item_header *ph;
    637  1.101   thorpej 
    638  1.101   thorpej 	while ((ph = LIST_FIRST(pq)) != NULL) {
    639  1.101   thorpej 		LIST_REMOVE(ph, ph_pagelist);
    640  1.101   thorpej 		pool_allocator_free(pp, ph->ph_page);
    641  1.134        ad 		if ((pp->pr_roflags & PR_PHINPAGE) == 0)
    642  1.101   thorpej 			pool_put(pp->pr_phpool, ph);
    643  1.101   thorpej 	}
    644  1.101   thorpej }
    645  1.101   thorpej 
    646    1.3        pk /*
    647    1.3        pk  * Remove a page from the pool.
    648    1.3        pk  */
    649  1.110     perry static inline void
    650   1.61       chs pr_rmpage(struct pool *pp, struct pool_item_header *ph,
    651   1.61       chs      struct pool_pagelist *pq)
    652    1.3        pk {
    653    1.3        pk 
    654  1.134        ad 	KASSERT(mutex_owned(&pp->pr_lock));
    655   1.91      yamt 
    656    1.3        pk 	/*
    657    1.7   thorpej 	 * If the page was idle, decrement the idle page count.
    658    1.3        pk 	 */
    659    1.6   thorpej 	if (ph->ph_nmissing == 0) {
    660  1.207  riastrad 		KASSERT(pp->pr_nidle != 0);
    661  1.207  riastrad 		KASSERTMSG((pp->pr_nitems >= pp->pr_itemsperpage),
    662  1.251  christos 		    "%s: [%s] nitems=%u < itemsperpage=%u", __func__,
    663  1.251  christos 		    pp->pr_wchan, pp->pr_nitems, pp->pr_itemsperpage);
    664    1.6   thorpej 		pp->pr_nidle--;
    665    1.6   thorpej 	}
    666    1.7   thorpej 
    667   1.20   thorpej 	pp->pr_nitems -= pp->pr_itemsperpage;
    668   1.20   thorpej 
    669    1.7   thorpej 	/*
    670  1.101   thorpej 	 * Unlink the page from the pool and queue it for release.
    671    1.7   thorpej 	 */
    672   1.88       chs 	LIST_REMOVE(ph, ph_pagelist);
    673  1.245      maxv 	if (pp->pr_roflags & PR_PHINPAGE) {
    674  1.245      maxv 		if (__predict_false(ph->ph_poolid != pp->pr_poolid)) {
    675  1.245      maxv 			panic("%s: [%s] ph %p poolid %u != %u",
    676  1.245      maxv 			    __func__, pp->pr_wchan, ph, ph->ph_poolid,
    677  1.245      maxv 			    pp->pr_poolid);
    678  1.245      maxv 		}
    679  1.245      maxv 	} else {
    680   1.91      yamt 		SPLAY_REMOVE(phtree, &pp->pr_phtree, ph);
    681  1.245      maxv 	}
    682  1.101   thorpej 	LIST_INSERT_HEAD(pq, ph, ph_pagelist);
    683  1.101   thorpej 
    684    1.7   thorpej 	pp->pr_npages--;
    685    1.7   thorpej 	pp->pr_npagefree++;
    686    1.6   thorpej 
    687   1.88       chs 	pool_update_curpage(pp);
    688    1.3        pk }
    689    1.3        pk 
    690    1.3        pk /*
    691   1.94    simonb  * Initialize all the pools listed in the "pools" link set.
    692   1.94    simonb  */
    693   1.94    simonb void
    694  1.117      yamt pool_subsystem_init(void)
    695   1.94    simonb {
    696  1.192     rmind 	size_t size;
    697  1.191      para 	int idx;
    698   1.94    simonb 
    699  1.134        ad 	mutex_init(&pool_head_lock, MUTEX_DEFAULT, IPL_NONE);
    700  1.179   mlelstv 	mutex_init(&pool_allocator_lock, MUTEX_DEFAULT, IPL_NONE);
    701  1.134        ad 	cv_init(&pool_busy, "poolbusy");
    702  1.134        ad 
    703  1.191      para 	/*
    704  1.191      para 	 * Initialize private page header pool and cache magazine pool if we
    705  1.191      para 	 * haven't done so yet.
    706  1.191      para 	 */
    707  1.191      para 	for (idx = 0; idx < PHPOOL_MAX; idx++) {
    708  1.191      para 		static char phpool_names[PHPOOL_MAX][6+1+6+1];
    709  1.191      para 		int nelem;
    710  1.191      para 		size_t sz;
    711  1.191      para 
    712  1.191      para 		nelem = PHPOOL_FREELIST_NELEM(idx);
    713  1.256      maxv 		KASSERT(nelem != 0);
    714  1.191      para 		snprintf(phpool_names[idx], sizeof(phpool_names[idx]),
    715  1.191      para 		    "phpool-%d", nelem);
    716  1.256      maxv 		sz = offsetof(struct pool_item_header,
    717  1.256      maxv 		    ph_bitmap[howmany(nelem, BITMAP_SIZE)]);
    718  1.191      para 		pool_init(&phpool[idx], sz, 0, 0, 0,
    719  1.191      para 		    phpool_names[idx], &pool_allocator_meta, IPL_VM);
    720  1.117      yamt 	}
    721  1.191      para 
    722  1.191      para 	size = sizeof(pcg_t) +
    723  1.191      para 	    (PCG_NOBJECTS_NORMAL - 1) * sizeof(pcgpair_t);
    724  1.191      para 	pool_init(&pcg_normal_pool, size, coherency_unit, 0, 0,
    725  1.191      para 	    "pcgnormal", &pool_allocator_meta, IPL_VM);
    726  1.191      para 
    727  1.191      para 	size = sizeof(pcg_t) +
    728  1.191      para 	    (PCG_NOBJECTS_LARGE - 1) * sizeof(pcgpair_t);
    729  1.191      para 	pool_init(&pcg_large_pool, size, coherency_unit, 0, 0,
    730  1.191      para 	    "pcglarge", &pool_allocator_meta, IPL_VM);
    731  1.134        ad 
    732  1.156        ad 	pool_init(&cache_pool, sizeof(struct pool_cache), coherency_unit,
    733  1.191      para 	    0, 0, "pcache", &pool_allocator_meta, IPL_NONE);
    734  1.134        ad 
    735  1.156        ad 	pool_init(&cache_cpu_pool, sizeof(pool_cache_cpu_t), coherency_unit,
    736  1.191      para 	    0, 0, "pcachecpu", &pool_allocator_meta, IPL_NONE);
    737   1.94    simonb }
    738   1.94    simonb 
    739  1.240      maxv static inline bool
    740  1.240      maxv pool_init_is_phinpage(const struct pool *pp)
    741  1.240      maxv {
    742  1.240      maxv 	size_t pagesize;
    743  1.240      maxv 
    744  1.240      maxv 	if (pp->pr_roflags & PR_PHINPAGE) {
    745  1.240      maxv 		return true;
    746  1.240      maxv 	}
    747  1.240      maxv 	if (pp->pr_roflags & (PR_NOTOUCH | PR_NOALIGN)) {
    748  1.240      maxv 		return false;
    749  1.240      maxv 	}
    750  1.240      maxv 
    751  1.240      maxv 	pagesize = pp->pr_alloc->pa_pagesz;
    752  1.240      maxv 
    753  1.240      maxv 	/*
    754  1.240      maxv 	 * Threshold: the item size is below 1/16 of a page size, and below
    755  1.240      maxv 	 * 8 times the page header size. The latter ensures we go off-page
    756  1.240      maxv 	 * if the page header would make us waste a rather big item.
    757  1.240      maxv 	 */
    758  1.240      maxv 	if (pp->pr_size < MIN(pagesize / 16, PHSIZE * 8)) {
    759  1.240      maxv 		return true;
    760  1.240      maxv 	}
    761  1.240      maxv 
    762  1.240      maxv 	/* Put the header into the page if it doesn't waste any items. */
    763  1.240      maxv 	if (pagesize / pp->pr_size == (pagesize - PHSIZE) / pp->pr_size) {
    764  1.240      maxv 		return true;
    765  1.240      maxv 	}
    766  1.240      maxv 
    767  1.240      maxv 	return false;
    768  1.240      maxv }
    769  1.240      maxv 
    770  1.242      maxv static inline bool
    771  1.242      maxv pool_init_is_usebmap(const struct pool *pp)
    772  1.242      maxv {
    773  1.243      maxv 	size_t bmapsize;
    774  1.243      maxv 
    775  1.242      maxv 	if (pp->pr_roflags & PR_NOTOUCH) {
    776  1.242      maxv 		return true;
    777  1.242      maxv 	}
    778  1.242      maxv 
    779  1.243      maxv 	/*
    780  1.256      maxv 	 * If we're off-page, go with a bitmap.
    781  1.256      maxv 	 */
    782  1.256      maxv 	if (!(pp->pr_roflags & PR_PHINPAGE)) {
    783  1.256      maxv 		return true;
    784  1.256      maxv 	}
    785  1.256      maxv 
    786  1.256      maxv 	/*
    787  1.243      maxv 	 * If we're on-page, and the page header can already contain a bitmap
    788  1.243      maxv 	 * big enough to cover all the items of the page, go with a bitmap.
    789  1.243      maxv 	 */
    790  1.243      maxv 	bmapsize = roundup(PHSIZE, pp->pr_align) -
    791  1.243      maxv 	    offsetof(struct pool_item_header, ph_bitmap[0]);
    792  1.243      maxv 	KASSERT(bmapsize % sizeof(pool_item_bitmap_t) == 0);
    793  1.243      maxv 	if (pp->pr_itemsperpage <= bmapsize * CHAR_BIT) {
    794  1.243      maxv 		return true;
    795  1.243      maxv 	}
    796  1.243      maxv 
    797  1.242      maxv 	return false;
    798  1.242      maxv }
    799  1.242      maxv 
    800   1.94    simonb /*
    801    1.3        pk  * Initialize the given pool resource structure.
    802    1.3        pk  *
    803    1.3        pk  * We export this routine to allow other kernel parts to declare
    804  1.195     rmind  * static pools that must be initialized before kmem(9) is available.
    805    1.3        pk  */
    806    1.3        pk void
    807   1.42   thorpej pool_init(struct pool *pp, size_t size, u_int align, u_int ioff, int flags,
    808  1.129        ad     const char *wchan, struct pool_allocator *palloc, int ipl)
    809    1.3        pk {
    810  1.116    simonb 	struct pool *pp1;
    811  1.240      maxv 	size_t prsize;
    812  1.237      maxv 	int itemspace, slack;
    813    1.3        pk 
    814  1.238      maxv 	/* XXX ioff will be removed. */
    815  1.238      maxv 	KASSERT(ioff == 0);
    816  1.238      maxv 
    817  1.116    simonb #ifdef DEBUG
    818  1.198  christos 	if (__predict_true(!cold))
    819  1.198  christos 		mutex_enter(&pool_head_lock);
    820  1.116    simonb 	/*
    821  1.116    simonb 	 * Check that the pool hasn't already been initialised and
    822  1.116    simonb 	 * added to the list of all pools.
    823  1.116    simonb 	 */
    824  1.145        ad 	TAILQ_FOREACH(pp1, &pool_head, pr_poollist) {
    825  1.116    simonb 		if (pp == pp1)
    826  1.213  christos 			panic("%s: [%s] already initialised", __func__,
    827  1.116    simonb 			    wchan);
    828  1.116    simonb 	}
    829  1.198  christos 	if (__predict_true(!cold))
    830  1.198  christos 		mutex_exit(&pool_head_lock);
    831  1.116    simonb #endif
    832  1.116    simonb 
    833   1.66   thorpej 	if (palloc == NULL)
    834   1.66   thorpej 		palloc = &pool_allocator_kmem;
    835  1.244      maxv 
    836  1.180   mlelstv 	if (!cold)
    837  1.180   mlelstv 		mutex_enter(&pool_allocator_lock);
    838  1.178      elad 	if (palloc->pa_refcnt++ == 0) {
    839  1.112     bjh21 		if (palloc->pa_pagesz == 0)
    840   1.66   thorpej 			palloc->pa_pagesz = PAGE_SIZE;
    841   1.66   thorpej 
    842   1.66   thorpej 		TAILQ_INIT(&palloc->pa_list);
    843   1.66   thorpej 
    844  1.134        ad 		mutex_init(&palloc->pa_lock, MUTEX_DEFAULT, IPL_VM);
    845   1.66   thorpej 		palloc->pa_pagemask = ~(palloc->pa_pagesz - 1);
    846   1.66   thorpej 		palloc->pa_pageshift = ffs(palloc->pa_pagesz) - 1;
    847    1.4   thorpej 	}
    848  1.180   mlelstv 	if (!cold)
    849  1.180   mlelstv 		mutex_exit(&pool_allocator_lock);
    850    1.3        pk 
    851  1.279   thorpej 	/*
    852  1.279   thorpej 	 * PR_PSERIALIZE implies PR_NOTOUCH; freed objects must remain
    853  1.279   thorpej 	 * valid until the the backing page is returned to the system.
    854  1.279   thorpej 	 */
    855  1.279   thorpej 	if (flags & PR_PSERIALIZE) {
    856  1.279   thorpej 		flags |= PR_NOTOUCH;
    857  1.279   thorpej 	}
    858  1.279   thorpej 
    859    1.3        pk 	if (align == 0)
    860    1.3        pk 		align = ALIGN(1);
    861   1.14   thorpej 
    862  1.204      maxv 	prsize = size;
    863  1.204      maxv 	if ((flags & PR_NOTOUCH) == 0 && prsize < sizeof(struct pool_item))
    864  1.204      maxv 		prsize = sizeof(struct pool_item);
    865    1.3        pk 
    866  1.204      maxv 	prsize = roundup(prsize, align);
    867  1.207  riastrad 	KASSERTMSG((prsize <= palloc->pa_pagesz),
    868  1.213  christos 	    "%s: [%s] pool item size (%zu) larger than page size (%u)",
    869  1.213  christos 	    __func__, wchan, prsize, palloc->pa_pagesz);
    870   1.35        pk 
    871    1.3        pk 	/*
    872    1.3        pk 	 * Initialize the pool structure.
    873    1.3        pk 	 */
    874   1.88       chs 	LIST_INIT(&pp->pr_emptypages);
    875   1.88       chs 	LIST_INIT(&pp->pr_fullpages);
    876   1.88       chs 	LIST_INIT(&pp->pr_partpages);
    877  1.134        ad 	pp->pr_cache = NULL;
    878    1.3        pk 	pp->pr_curpage = NULL;
    879    1.3        pk 	pp->pr_npages = 0;
    880    1.3        pk 	pp->pr_minitems = 0;
    881    1.3        pk 	pp->pr_minpages = 0;
    882    1.3        pk 	pp->pr_maxpages = UINT_MAX;
    883   1.20   thorpej 	pp->pr_roflags = flags;
    884   1.20   thorpej 	pp->pr_flags = 0;
    885  1.204      maxv 	pp->pr_size = prsize;
    886  1.233      maxv 	pp->pr_reqsize = size;
    887    1.3        pk 	pp->pr_align = align;
    888    1.3        pk 	pp->pr_wchan = wchan;
    889   1.66   thorpej 	pp->pr_alloc = palloc;
    890  1.245      maxv 	pp->pr_poolid = atomic_inc_uint_nv(&poolid_counter);
    891   1.20   thorpej 	pp->pr_nitems = 0;
    892   1.20   thorpej 	pp->pr_nout = 0;
    893   1.20   thorpej 	pp->pr_hardlimit = UINT_MAX;
    894   1.20   thorpej 	pp->pr_hardlimit_warning = NULL;
    895   1.31   thorpej 	pp->pr_hardlimit_ratecap.tv_sec = 0;
    896   1.31   thorpej 	pp->pr_hardlimit_ratecap.tv_usec = 0;
    897   1.31   thorpej 	pp->pr_hardlimit_warning_last.tv_sec = 0;
    898   1.31   thorpej 	pp->pr_hardlimit_warning_last.tv_usec = 0;
    899   1.68   thorpej 	pp->pr_drain_hook = NULL;
    900   1.68   thorpej 	pp->pr_drain_hook_arg = NULL;
    901  1.125        ad 	pp->pr_freecheck = NULL;
    902  1.255      maxv 	pp->pr_redzone = false;
    903  1.204      maxv 	pool_redzone_init(pp, size);
    904  1.249      maxv 	pool_quarantine_init(pp);
    905    1.3        pk 
    906    1.3        pk 	/*
    907  1.240      maxv 	 * Decide whether to put the page header off-page to avoid wasting too
    908  1.240      maxv 	 * large a part of the page or too big an item. Off-page page headers
    909  1.240      maxv 	 * go on a hash table, so we can match a returned item with its header
    910  1.240      maxv 	 * based on the page address.
    911    1.3        pk 	 */
    912  1.240      maxv 	if (pool_init_is_phinpage(pp)) {
    913  1.241      maxv 		/* Use the beginning of the page for the page header */
    914  1.241      maxv 		itemspace = palloc->pa_pagesz - roundup(PHSIZE, align);
    915  1.241      maxv 		pp->pr_itemoffset = roundup(PHSIZE, align);
    916  1.239      maxv 		pp->pr_roflags |= PR_PHINPAGE;
    917    1.2        pk 	} else {
    918    1.3        pk 		/* The page header will be taken from our page header pool */
    919  1.237      maxv 		itemspace = palloc->pa_pagesz;
    920  1.241      maxv 		pp->pr_itemoffset = 0;
    921   1.88       chs 		SPLAY_INIT(&pp->pr_phtree);
    922    1.2        pk 	}
    923    1.1        pk 
    924  1.243      maxv 	pp->pr_itemsperpage = itemspace / pp->pr_size;
    925  1.243      maxv 	KASSERT(pp->pr_itemsperpage != 0);
    926  1.243      maxv 
    927  1.242      maxv 	/*
    928  1.242      maxv 	 * Decide whether to use a bitmap or a linked list to manage freed
    929  1.242      maxv 	 * items.
    930  1.242      maxv 	 */
    931  1.242      maxv 	if (pool_init_is_usebmap(pp)) {
    932  1.242      maxv 		pp->pr_roflags |= PR_USEBMAP;
    933  1.242      maxv 	}
    934  1.242      maxv 
    935  1.242      maxv 	/*
    936  1.256      maxv 	 * If we're off-page, then we're using a bitmap; choose the appropriate
    937  1.256      maxv 	 * pool to allocate page headers, whose size varies depending on the
    938  1.256      maxv 	 * bitmap. If we're on-page, nothing to do.
    939  1.242      maxv 	 */
    940  1.256      maxv 	if (!(pp->pr_roflags & PR_PHINPAGE)) {
    941   1.97      yamt 		int idx;
    942   1.97      yamt 
    943  1.256      maxv 		KASSERT(pp->pr_roflags & PR_USEBMAP);
    944  1.256      maxv 
    945   1.97      yamt 		for (idx = 0; pp->pr_itemsperpage > PHPOOL_FREELIST_NELEM(idx);
    946   1.97      yamt 		    idx++) {
    947   1.97      yamt 			/* nothing */
    948   1.97      yamt 		}
    949   1.97      yamt 		if (idx >= PHPOOL_MAX) {
    950   1.97      yamt 			/*
    951   1.97      yamt 			 * if you see this panic, consider to tweak
    952   1.97      yamt 			 * PHPOOL_MAX and PHPOOL_FREELIST_NELEM.
    953   1.97      yamt 			 */
    954  1.213  christos 			panic("%s: [%s] too large itemsperpage(%d) for "
    955  1.242      maxv 			    "PR_USEBMAP", __func__,
    956   1.97      yamt 			    pp->pr_wchan, pp->pr_itemsperpage);
    957   1.97      yamt 		}
    958   1.97      yamt 		pp->pr_phpool = &phpool[idx];
    959  1.242      maxv 	} else {
    960   1.97      yamt 		pp->pr_phpool = NULL;
    961   1.97      yamt 	}
    962    1.3        pk 
    963    1.3        pk 	/*
    964    1.3        pk 	 * Use the slack between the chunks and the page header
    965    1.3        pk 	 * for "cache coloring".
    966    1.3        pk 	 */
    967  1.237      maxv 	slack = itemspace - pp->pr_itemsperpage * pp->pr_size;
    968  1.239      maxv 	pp->pr_maxcolor = rounddown(slack, align);
    969    1.3        pk 	pp->pr_curcolor = 0;
    970    1.3        pk 
    971    1.3        pk 	pp->pr_nget = 0;
    972    1.3        pk 	pp->pr_nfail = 0;
    973    1.3        pk 	pp->pr_nput = 0;
    974    1.3        pk 	pp->pr_npagealloc = 0;
    975    1.3        pk 	pp->pr_npagefree = 0;
    976    1.1        pk 	pp->pr_hiwat = 0;
    977    1.8   thorpej 	pp->pr_nidle = 0;
    978  1.134        ad 	pp->pr_refcnt = 0;
    979    1.3        pk 
    980  1.157        ad 	mutex_init(&pp->pr_lock, MUTEX_DEFAULT, ipl);
    981  1.134        ad 	cv_init(&pp->pr_cv, wchan);
    982  1.134        ad 	pp->pr_ipl = ipl;
    983    1.1        pk 
    984  1.145        ad 	/* Insert into the list of all pools. */
    985  1.181   mlelstv 	if (!cold)
    986  1.134        ad 		mutex_enter(&pool_head_lock);
    987  1.145        ad 	TAILQ_FOREACH(pp1, &pool_head, pr_poollist) {
    988  1.145        ad 		if (strcmp(pp1->pr_wchan, pp->pr_wchan) > 0)
    989  1.145        ad 			break;
    990  1.145        ad 	}
    991  1.145        ad 	if (pp1 == NULL)
    992  1.145        ad 		TAILQ_INSERT_TAIL(&pool_head, pp, pr_poollist);
    993  1.145        ad 	else
    994  1.145        ad 		TAILQ_INSERT_BEFORE(pp1, pp, pr_poollist);
    995  1.181   mlelstv 	if (!cold)
    996  1.134        ad 		mutex_exit(&pool_head_lock);
    997  1.134        ad 
    998  1.167     skrll 	/* Insert this into the list of pools using this allocator. */
    999  1.181   mlelstv 	if (!cold)
   1000  1.134        ad 		mutex_enter(&palloc->pa_lock);
   1001  1.145        ad 	TAILQ_INSERT_TAIL(&palloc->pa_list, pp, pr_alloc_list);
   1002  1.181   mlelstv 	if (!cold)
   1003  1.134        ad 		mutex_exit(&palloc->pa_lock);
   1004    1.1        pk }
   1005    1.1        pk 
   1006    1.1        pk /*
   1007  1.283    andvar  * De-commission a pool resource.
   1008    1.1        pk  */
   1009    1.1        pk void
   1010   1.42   thorpej pool_destroy(struct pool *pp)
   1011    1.1        pk {
   1012  1.101   thorpej 	struct pool_pagelist pq;
   1013    1.3        pk 	struct pool_item_header *ph;
   1014   1.43   thorpej 
   1015  1.249      maxv 	pool_quarantine_flush(pp);
   1016  1.249      maxv 
   1017  1.101   thorpej 	/* Remove from global pool list */
   1018  1.134        ad 	mutex_enter(&pool_head_lock);
   1019  1.134        ad 	while (pp->pr_refcnt != 0)
   1020  1.134        ad 		cv_wait(&pool_busy, &pool_head_lock);
   1021  1.145        ad 	TAILQ_REMOVE(&pool_head, pp, pr_poollist);
   1022  1.101   thorpej 	if (drainpp == pp)
   1023  1.101   thorpej 		drainpp = NULL;
   1024  1.134        ad 	mutex_exit(&pool_head_lock);
   1025  1.101   thorpej 
   1026  1.101   thorpej 	/* Remove this pool from its allocator's list of pools. */
   1027  1.134        ad 	mutex_enter(&pp->pr_alloc->pa_lock);
   1028   1.66   thorpej 	TAILQ_REMOVE(&pp->pr_alloc->pa_list, pp, pr_alloc_list);
   1029  1.134        ad 	mutex_exit(&pp->pr_alloc->pa_lock);
   1030   1.66   thorpej 
   1031  1.178      elad 	mutex_enter(&pool_allocator_lock);
   1032  1.178      elad 	if (--pp->pr_alloc->pa_refcnt == 0)
   1033  1.178      elad 		mutex_destroy(&pp->pr_alloc->pa_lock);
   1034  1.178      elad 	mutex_exit(&pool_allocator_lock);
   1035  1.178      elad 
   1036  1.134        ad 	mutex_enter(&pp->pr_lock);
   1037  1.101   thorpej 
   1038  1.134        ad 	KASSERT(pp->pr_cache == NULL);
   1039  1.207  riastrad 	KASSERTMSG((pp->pr_nout == 0),
   1040  1.251  christos 	    "%s: [%s] pool busy: still out: %u", __func__, pp->pr_wchan,
   1041  1.251  christos 	    pp->pr_nout);
   1042  1.101   thorpej 	KASSERT(LIST_EMPTY(&pp->pr_fullpages));
   1043  1.101   thorpej 	KASSERT(LIST_EMPTY(&pp->pr_partpages));
   1044  1.101   thorpej 
   1045    1.3        pk 	/* Remove all pages */
   1046  1.101   thorpej 	LIST_INIT(&pq);
   1047   1.88       chs 	while ((ph = LIST_FIRST(&pp->pr_emptypages)) != NULL)
   1048  1.101   thorpej 		pr_rmpage(pp, ph, &pq);
   1049  1.101   thorpej 
   1050  1.134        ad 	mutex_exit(&pp->pr_lock);
   1051    1.3        pk 
   1052  1.101   thorpej 	pr_pagelist_free(pp, &pq);
   1053  1.134        ad 	cv_destroy(&pp->pr_cv);
   1054  1.134        ad 	mutex_destroy(&pp->pr_lock);
   1055    1.1        pk }
   1056    1.1        pk 
   1057   1.68   thorpej void
   1058   1.68   thorpej pool_set_drain_hook(struct pool *pp, void (*fn)(void *, int), void *arg)
   1059   1.68   thorpej {
   1060   1.68   thorpej 
   1061   1.68   thorpej 	/* XXX no locking -- must be used just after pool_init() */
   1062  1.207  riastrad 	KASSERTMSG((pp->pr_drain_hook == NULL),
   1063  1.213  christos 	    "%s: [%s] already set", __func__, pp->pr_wchan);
   1064   1.68   thorpej 	pp->pr_drain_hook = fn;
   1065   1.68   thorpej 	pp->pr_drain_hook_arg = arg;
   1066   1.68   thorpej }
   1067   1.68   thorpej 
   1068   1.88       chs static struct pool_item_header *
   1069  1.128  christos pool_alloc_item_header(struct pool *pp, void *storage, int flags)
   1070   1.55   thorpej {
   1071   1.55   thorpej 	struct pool_item_header *ph;
   1072   1.55   thorpej 
   1073   1.55   thorpej 	if ((pp->pr_roflags & PR_PHINPAGE) != 0)
   1074  1.241      maxv 		ph = storage;
   1075  1.134        ad 	else
   1076   1.97      yamt 		ph = pool_get(pp->pr_phpool, flags);
   1077   1.55   thorpej 
   1078  1.236      maxv 	return ph;
   1079   1.55   thorpej }
   1080    1.1        pk 
   1081    1.1        pk /*
   1082  1.134        ad  * Grab an item from the pool.
   1083    1.1        pk  */
   1084    1.3        pk void *
   1085   1.56  sommerfe pool_get(struct pool *pp, int flags)
   1086    1.1        pk {
   1087    1.3        pk 	struct pool_item_header *ph;
   1088   1.55   thorpej 	void *v;
   1089    1.1        pk 
   1090  1.215  christos 	KASSERT(!(flags & PR_NOWAIT) != !(flags & PR_WAITOK));
   1091  1.207  riastrad 	KASSERTMSG((pp->pr_itemsperpage != 0),
   1092  1.213  christos 	    "%s: [%s] pr_itemsperpage is zero, "
   1093  1.213  christos 	    "pool not initialized?", __func__, pp->pr_wchan);
   1094  1.207  riastrad 	KASSERTMSG((!(cpu_intr_p() || cpu_softintr_p())
   1095  1.207  riastrad 		|| pp->pr_ipl != IPL_NONE || cold || panicstr != NULL),
   1096  1.213  christos 	    "%s: [%s] is IPL_NONE, but called from interrupt context",
   1097  1.213  christos 	    __func__, pp->pr_wchan);
   1098  1.155        ad 	if (flags & PR_WAITOK) {
   1099  1.154      yamt 		ASSERT_SLEEPABLE();
   1100  1.155        ad 	}
   1101    1.1        pk 
   1102  1.270      maxv 	if (flags & PR_NOWAIT) {
   1103  1.270      maxv 		if (fault_inject())
   1104  1.270      maxv 			return NULL;
   1105  1.270      maxv 	}
   1106  1.270      maxv 
   1107  1.134        ad 	mutex_enter(&pp->pr_lock);
   1108   1.20   thorpej  startover:
   1109   1.20   thorpej 	/*
   1110   1.20   thorpej 	 * Check to see if we've reached the hard limit.  If we have,
   1111   1.20   thorpej 	 * and we can wait, then wait until an item has been returned to
   1112   1.20   thorpej 	 * the pool.
   1113   1.20   thorpej 	 */
   1114  1.207  riastrad 	KASSERTMSG((pp->pr_nout <= pp->pr_hardlimit),
   1115  1.213  christos 	    "%s: %s: crossed hard limit", __func__, pp->pr_wchan);
   1116   1.34   thorpej 	if (__predict_false(pp->pr_nout == pp->pr_hardlimit)) {
   1117   1.68   thorpej 		if (pp->pr_drain_hook != NULL) {
   1118   1.68   thorpej 			/*
   1119   1.68   thorpej 			 * Since the drain hook is going to free things
   1120   1.68   thorpej 			 * back to the pool, unlock, call the hook, re-lock,
   1121   1.68   thorpej 			 * and check the hardlimit condition again.
   1122   1.68   thorpej 			 */
   1123  1.134        ad 			mutex_exit(&pp->pr_lock);
   1124   1.68   thorpej 			(*pp->pr_drain_hook)(pp->pr_drain_hook_arg, flags);
   1125  1.134        ad 			mutex_enter(&pp->pr_lock);
   1126   1.68   thorpej 			if (pp->pr_nout < pp->pr_hardlimit)
   1127   1.68   thorpej 				goto startover;
   1128   1.68   thorpej 		}
   1129   1.68   thorpej 
   1130   1.29  sommerfe 		if ((flags & PR_WAITOK) && !(flags & PR_LIMITFAIL)) {
   1131   1.20   thorpej 			/*
   1132   1.20   thorpej 			 * XXX: A warning isn't logged in this case.  Should
   1133   1.20   thorpej 			 * it be?
   1134   1.20   thorpej 			 */
   1135   1.20   thorpej 			pp->pr_flags |= PR_WANTED;
   1136  1.212  christos 			do {
   1137  1.212  christos 				cv_wait(&pp->pr_cv, &pp->pr_lock);
   1138  1.212  christos 			} while (pp->pr_flags & PR_WANTED);
   1139   1.20   thorpej 			goto startover;
   1140   1.20   thorpej 		}
   1141   1.31   thorpej 
   1142   1.31   thorpej 		/*
   1143   1.31   thorpej 		 * Log a message that the hard limit has been hit.
   1144   1.31   thorpej 		 */
   1145   1.31   thorpej 		if (pp->pr_hardlimit_warning != NULL &&
   1146   1.31   thorpej 		    ratecheck(&pp->pr_hardlimit_warning_last,
   1147   1.31   thorpej 			      &pp->pr_hardlimit_ratecap))
   1148   1.31   thorpej 			log(LOG_ERR, "%s\n", pp->pr_hardlimit_warning);
   1149   1.21   thorpej 
   1150   1.21   thorpej 		pp->pr_nfail++;
   1151   1.21   thorpej 
   1152  1.134        ad 		mutex_exit(&pp->pr_lock);
   1153  1.216  christos 		KASSERT((flags & (PR_NOWAIT|PR_LIMITFAIL)) != 0);
   1154  1.236      maxv 		return NULL;
   1155   1.20   thorpej 	}
   1156   1.20   thorpej 
   1157    1.3        pk 	/*
   1158    1.3        pk 	 * The convention we use is that if `curpage' is not NULL, then
   1159    1.3        pk 	 * it points at a non-empty bucket. In particular, `curpage'
   1160    1.3        pk 	 * never points at a page header which has PR_PHINPAGE set and
   1161    1.3        pk 	 * has no items in its bucket.
   1162    1.3        pk 	 */
   1163   1.20   thorpej 	if ((ph = pp->pr_curpage) == NULL) {
   1164  1.113      yamt 		int error;
   1165  1.113      yamt 
   1166  1.207  riastrad 		KASSERTMSG((pp->pr_nitems == 0),
   1167  1.213  christos 		    "%s: [%s] curpage NULL, inconsistent nitems %u",
   1168  1.213  christos 		    __func__, pp->pr_wchan, pp->pr_nitems);
   1169   1.20   thorpej 
   1170   1.21   thorpej 		/*
   1171   1.21   thorpej 		 * Call the back-end page allocator for more memory.
   1172   1.21   thorpej 		 * Release the pool lock, as the back-end page allocator
   1173   1.21   thorpej 		 * may block.
   1174   1.21   thorpej 		 */
   1175  1.113      yamt 		error = pool_grow(pp, flags);
   1176  1.113      yamt 		if (error != 0) {
   1177   1.21   thorpej 			/*
   1178  1.210   mlelstv 			 * pool_grow aborts when another thread
   1179  1.210   mlelstv 			 * is allocating a new page. Retry if it
   1180  1.210   mlelstv 			 * waited for it.
   1181  1.210   mlelstv 			 */
   1182  1.210   mlelstv 			if (error == ERESTART)
   1183  1.210   mlelstv 				goto startover;
   1184  1.210   mlelstv 
   1185  1.210   mlelstv 			/*
   1186   1.55   thorpej 			 * We were unable to allocate a page or item
   1187   1.55   thorpej 			 * header, but we released the lock during
   1188   1.55   thorpej 			 * allocation, so perhaps items were freed
   1189   1.55   thorpej 			 * back to the pool.  Check for this case.
   1190   1.21   thorpej 			 */
   1191   1.21   thorpej 			if (pp->pr_curpage != NULL)
   1192   1.21   thorpej 				goto startover;
   1193   1.15        pk 
   1194  1.117      yamt 			pp->pr_nfail++;
   1195  1.134        ad 			mutex_exit(&pp->pr_lock);
   1196  1.265       chs 			KASSERT((flags & (PR_NOWAIT|PR_LIMITFAIL)) != 0);
   1197  1.236      maxv 			return NULL;
   1198    1.1        pk 		}
   1199    1.3        pk 
   1200   1.20   thorpej 		/* Start the allocation process over. */
   1201   1.20   thorpej 		goto startover;
   1202    1.3        pk 	}
   1203  1.242      maxv 	if (pp->pr_roflags & PR_USEBMAP) {
   1204  1.207  riastrad 		KASSERTMSG((ph->ph_nmissing < pp->pr_itemsperpage),
   1205  1.251  christos 		    "%s: [%s] pool page empty", __func__, pp->pr_wchan);
   1206  1.234      maxv 		v = pr_item_bitmap_get(pp, ph);
   1207   1.97      yamt 	} else {
   1208  1.234      maxv 		v = pr_item_linkedlist_get(pp, ph);
   1209   1.97      yamt 	}
   1210   1.20   thorpej 	pp->pr_nitems--;
   1211   1.20   thorpej 	pp->pr_nout++;
   1212    1.6   thorpej 	if (ph->ph_nmissing == 0) {
   1213  1.207  riastrad 		KASSERT(pp->pr_nidle > 0);
   1214    1.6   thorpej 		pp->pr_nidle--;
   1215   1.88       chs 
   1216   1.88       chs 		/*
   1217   1.88       chs 		 * This page was previously empty.  Move it to the list of
   1218   1.88       chs 		 * partially-full pages.  This page is already curpage.
   1219   1.88       chs 		 */
   1220   1.88       chs 		LIST_REMOVE(ph, ph_pagelist);
   1221   1.88       chs 		LIST_INSERT_HEAD(&pp->pr_partpages, ph, ph_pagelist);
   1222    1.6   thorpej 	}
   1223    1.3        pk 	ph->ph_nmissing++;
   1224   1.97      yamt 	if (ph->ph_nmissing == pp->pr_itemsperpage) {
   1225  1.242      maxv 		KASSERTMSG(((pp->pr_roflags & PR_USEBMAP) ||
   1226  1.207  riastrad 			LIST_EMPTY(&ph->ph_itemlist)),
   1227  1.213  christos 		    "%s: [%s] nmissing (%u) inconsistent", __func__,
   1228  1.213  christos 			pp->pr_wchan, ph->ph_nmissing);
   1229    1.3        pk 		/*
   1230   1.88       chs 		 * This page is now full.  Move it to the full list
   1231   1.88       chs 		 * and select a new current page.
   1232    1.3        pk 		 */
   1233   1.88       chs 		LIST_REMOVE(ph, ph_pagelist);
   1234   1.88       chs 		LIST_INSERT_HEAD(&pp->pr_fullpages, ph, ph_pagelist);
   1235   1.88       chs 		pool_update_curpage(pp);
   1236    1.1        pk 	}
   1237    1.3        pk 
   1238    1.3        pk 	pp->pr_nget++;
   1239   1.20   thorpej 
   1240   1.20   thorpej 	/*
   1241   1.20   thorpej 	 * If we have a low water mark and we are now below that low
   1242   1.20   thorpej 	 * water mark, add more items to the pool.
   1243   1.20   thorpej 	 */
   1244   1.53   thorpej 	if (POOL_NEEDS_CATCHUP(pp) && pool_catchup(pp) != 0) {
   1245   1.20   thorpej 		/*
   1246   1.20   thorpej 		 * XXX: Should we log a warning?  Should we set up a timeout
   1247   1.20   thorpej 		 * to try again in a second or so?  The latter could break
   1248   1.20   thorpej 		 * a caller's assumptions about interrupt protection, etc.
   1249   1.20   thorpej 		 */
   1250   1.20   thorpej 	}
   1251   1.20   thorpej 
   1252  1.134        ad 	mutex_exit(&pp->pr_lock);
   1253  1.238      maxv 	KASSERT((((vaddr_t)v) & (pp->pr_align - 1)) == 0);
   1254  1.125        ad 	FREECHECK_OUT(&pp->pr_freecheck, v);
   1255  1.204      maxv 	pool_redzone_fill(pp, v);
   1256  1.262      maxv 	pool_get_kmsan(pp, v);
   1257  1.232  christos 	if (flags & PR_ZERO)
   1258  1.233      maxv 		memset(v, 0, pp->pr_reqsize);
   1259  1.232  christos 	return v;
   1260    1.1        pk }
   1261    1.1        pk 
   1262    1.1        pk /*
   1263   1.43   thorpej  * Internal version of pool_put().  Pool is already locked/entered.
   1264    1.1        pk  */
   1265   1.43   thorpej static void
   1266  1.101   thorpej pool_do_put(struct pool *pp, void *v, struct pool_pagelist *pq)
   1267    1.1        pk {
   1268    1.3        pk 	struct pool_item_header *ph;
   1269    1.3        pk 
   1270  1.134        ad 	KASSERT(mutex_owned(&pp->pr_lock));
   1271  1.204      maxv 	pool_redzone_check(pp, v);
   1272  1.262      maxv 	pool_put_kmsan(pp, v);
   1273  1.125        ad 	FREECHECK_IN(&pp->pr_freecheck, v);
   1274  1.134        ad 	LOCKDEBUG_MEM_CHECK(v, pp->pr_size);
   1275   1.61       chs 
   1276  1.207  riastrad 	KASSERTMSG((pp->pr_nout > 0),
   1277  1.213  christos 	    "%s: [%s] putting with none out", __func__, pp->pr_wchan);
   1278    1.3        pk 
   1279  1.121      yamt 	if (__predict_false((ph = pr_find_pagehead(pp, v)) == NULL)) {
   1280  1.213  christos 		panic("%s: [%s] page header missing", __func__,  pp->pr_wchan);
   1281    1.3        pk 	}
   1282   1.28   thorpej 
   1283    1.3        pk 	/*
   1284    1.3        pk 	 * Return to item list.
   1285    1.3        pk 	 */
   1286  1.242      maxv 	if (pp->pr_roflags & PR_USEBMAP) {
   1287  1.234      maxv 		pr_item_bitmap_put(pp, ph, v);
   1288   1.97      yamt 	} else {
   1289  1.234      maxv 		pr_item_linkedlist_put(pp, ph, v);
   1290   1.97      yamt 	}
   1291   1.79   thorpej 	KDASSERT(ph->ph_nmissing != 0);
   1292    1.3        pk 	ph->ph_nmissing--;
   1293    1.3        pk 	pp->pr_nput++;
   1294   1.20   thorpej 	pp->pr_nitems++;
   1295   1.20   thorpej 	pp->pr_nout--;
   1296    1.3        pk 
   1297    1.3        pk 	/* Cancel "pool empty" condition if it exists */
   1298    1.3        pk 	if (pp->pr_curpage == NULL)
   1299    1.3        pk 		pp->pr_curpage = ph;
   1300    1.3        pk 
   1301    1.3        pk 	if (pp->pr_flags & PR_WANTED) {
   1302    1.3        pk 		pp->pr_flags &= ~PR_WANTED;
   1303  1.134        ad 		cv_broadcast(&pp->pr_cv);
   1304    1.3        pk 	}
   1305    1.3        pk 
   1306    1.3        pk 	/*
   1307   1.88       chs 	 * If this page is now empty, do one of two things:
   1308   1.21   thorpej 	 *
   1309   1.88       chs 	 *	(1) If we have more pages than the page high water mark,
   1310   1.96   thorpej 	 *	    free the page back to the system.  ONLY CONSIDER
   1311   1.90   thorpej 	 *	    FREEING BACK A PAGE IF WE HAVE MORE THAN OUR MINIMUM PAGE
   1312   1.90   thorpej 	 *	    CLAIM.
   1313   1.21   thorpej 	 *
   1314   1.88       chs 	 *	(2) Otherwise, move the page to the empty page list.
   1315   1.88       chs 	 *
   1316   1.88       chs 	 * Either way, select a new current page (so we use a partially-full
   1317   1.88       chs 	 * page if one is available).
   1318    1.3        pk 	 */
   1319    1.3        pk 	if (ph->ph_nmissing == 0) {
   1320    1.6   thorpej 		pp->pr_nidle++;
   1321  1.267       chs 		if (pp->pr_nitems - pp->pr_itemsperpage >= pp->pr_minitems &&
   1322  1.267       chs 		    pp->pr_npages > pp->pr_minpages &&
   1323  1.152      yamt 		    pp->pr_npages > pp->pr_maxpages) {
   1324  1.101   thorpej 			pr_rmpage(pp, ph, pq);
   1325    1.3        pk 		} else {
   1326   1.88       chs 			LIST_REMOVE(ph, ph_pagelist);
   1327   1.88       chs 			LIST_INSERT_HEAD(&pp->pr_emptypages, ph, ph_pagelist);
   1328    1.3        pk 
   1329   1.21   thorpej 			/*
   1330   1.21   thorpej 			 * Update the timestamp on the page.  A page must
   1331   1.21   thorpej 			 * be idle for some period of time before it can
   1332   1.21   thorpej 			 * be reclaimed by the pagedaemon.  This minimizes
   1333   1.21   thorpej 			 * ping-pong'ing for memory.
   1334  1.151      yamt 			 *
   1335  1.151      yamt 			 * note for 64-bit time_t: truncating to 32-bit is not
   1336  1.151      yamt 			 * a problem for our usage.
   1337   1.21   thorpej 			 */
   1338  1.151      yamt 			ph->ph_time = time_uptime;
   1339    1.1        pk 		}
   1340   1.88       chs 		pool_update_curpage(pp);
   1341    1.1        pk 	}
   1342   1.88       chs 
   1343   1.21   thorpej 	/*
   1344   1.88       chs 	 * If the page was previously completely full, move it to the
   1345   1.88       chs 	 * partially-full list and make it the current page.  The next
   1346   1.88       chs 	 * allocation will get the item from this page, instead of
   1347   1.88       chs 	 * further fragmenting the pool.
   1348   1.21   thorpej 	 */
   1349   1.21   thorpej 	else if (ph->ph_nmissing == (pp->pr_itemsperpage - 1)) {
   1350   1.88       chs 		LIST_REMOVE(ph, ph_pagelist);
   1351   1.88       chs 		LIST_INSERT_HEAD(&pp->pr_partpages, ph, ph_pagelist);
   1352   1.21   thorpej 		pp->pr_curpage = ph;
   1353   1.21   thorpej 	}
   1354   1.43   thorpej }
   1355   1.43   thorpej 
   1356   1.56  sommerfe void
   1357   1.56  sommerfe pool_put(struct pool *pp, void *v)
   1358   1.56  sommerfe {
   1359  1.101   thorpej 	struct pool_pagelist pq;
   1360  1.101   thorpej 
   1361  1.101   thorpej 	LIST_INIT(&pq);
   1362   1.56  sommerfe 
   1363  1.134        ad 	mutex_enter(&pp->pr_lock);
   1364  1.249      maxv 	if (!pool_put_quarantine(pp, v, &pq)) {
   1365  1.249      maxv 		pool_do_put(pp, v, &pq);
   1366  1.249      maxv 	}
   1367  1.134        ad 	mutex_exit(&pp->pr_lock);
   1368   1.56  sommerfe 
   1369  1.102       chs 	pr_pagelist_free(pp, &pq);
   1370   1.56  sommerfe }
   1371   1.57  sommerfe 
   1372   1.74   thorpej /*
   1373  1.113      yamt  * pool_grow: grow a pool by a page.
   1374  1.113      yamt  *
   1375  1.113      yamt  * => called with pool locked.
   1376  1.113      yamt  * => unlock and relock the pool.
   1377  1.113      yamt  * => return with pool locked.
   1378  1.113      yamt  */
   1379  1.113      yamt 
   1380  1.113      yamt static int
   1381  1.113      yamt pool_grow(struct pool *pp, int flags)
   1382  1.113      yamt {
   1383  1.236      maxv 	struct pool_item_header *ph;
   1384  1.237      maxv 	char *storage;
   1385  1.236      maxv 
   1386  1.209  riastrad 	/*
   1387  1.209  riastrad 	 * If there's a pool_grow in progress, wait for it to complete
   1388  1.209  riastrad 	 * and try again from the top.
   1389  1.209  riastrad 	 */
   1390  1.209  riastrad 	if (pp->pr_flags & PR_GROWING) {
   1391  1.209  riastrad 		if (flags & PR_WAITOK) {
   1392  1.209  riastrad 			do {
   1393  1.209  riastrad 				cv_wait(&pp->pr_cv, &pp->pr_lock);
   1394  1.209  riastrad 			} while (pp->pr_flags & PR_GROWING);
   1395  1.209  riastrad 			return ERESTART;
   1396  1.209  riastrad 		} else {
   1397  1.219       mrg 			if (pp->pr_flags & PR_GROWINGNOWAIT) {
   1398  1.219       mrg 				/*
   1399  1.219       mrg 				 * This needs an unlock/relock dance so
   1400  1.219       mrg 				 * that the other caller has a chance to
   1401  1.219       mrg 				 * run and actually do the thing.  Note
   1402  1.219       mrg 				 * that this is effectively a busy-wait.
   1403  1.219       mrg 				 */
   1404  1.219       mrg 				mutex_exit(&pp->pr_lock);
   1405  1.219       mrg 				mutex_enter(&pp->pr_lock);
   1406  1.219       mrg 				return ERESTART;
   1407  1.219       mrg 			}
   1408  1.209  riastrad 			return EWOULDBLOCK;
   1409  1.209  riastrad 		}
   1410  1.209  riastrad 	}
   1411  1.209  riastrad 	pp->pr_flags |= PR_GROWING;
   1412  1.220  christos 	if (flags & PR_WAITOK)
   1413  1.220  christos 		mutex_exit(&pp->pr_lock);
   1414  1.220  christos 	else
   1415  1.219       mrg 		pp->pr_flags |= PR_GROWINGNOWAIT;
   1416  1.113      yamt 
   1417  1.237      maxv 	storage = pool_allocator_alloc(pp, flags);
   1418  1.237      maxv 	if (__predict_false(storage == NULL))
   1419  1.216  christos 		goto out;
   1420  1.216  christos 
   1421  1.237      maxv 	ph = pool_alloc_item_header(pp, storage, flags);
   1422  1.216  christos 	if (__predict_false(ph == NULL)) {
   1423  1.237      maxv 		pool_allocator_free(pp, storage);
   1424  1.209  riastrad 		goto out;
   1425  1.113      yamt 	}
   1426  1.113      yamt 
   1427  1.220  christos 	if (flags & PR_WAITOK)
   1428  1.220  christos 		mutex_enter(&pp->pr_lock);
   1429  1.237      maxv 	pool_prime_page(pp, storage, ph);
   1430  1.113      yamt 	pp->pr_npagealloc++;
   1431  1.216  christos 	KASSERT(pp->pr_flags & PR_GROWING);
   1432  1.219       mrg 	pp->pr_flags &= ~(PR_GROWING|PR_GROWINGNOWAIT);
   1433  1.209  riastrad 	/*
   1434  1.209  riastrad 	 * If anyone was waiting for pool_grow, notify them that we
   1435  1.209  riastrad 	 * may have just done it.
   1436  1.209  riastrad 	 */
   1437  1.216  christos 	cv_broadcast(&pp->pr_cv);
   1438  1.216  christos 	return 0;
   1439  1.216  christos out:
   1440  1.220  christos 	if (flags & PR_WAITOK)
   1441  1.220  christos 		mutex_enter(&pp->pr_lock);
   1442  1.209  riastrad 	KASSERT(pp->pr_flags & PR_GROWING);
   1443  1.219       mrg 	pp->pr_flags &= ~(PR_GROWING|PR_GROWINGNOWAIT);
   1444  1.216  christos 	return ENOMEM;
   1445  1.113      yamt }
   1446  1.113      yamt 
   1447  1.267       chs void
   1448   1.74   thorpej pool_prime(struct pool *pp, int n)
   1449   1.74   thorpej {
   1450   1.74   thorpej 
   1451  1.134        ad 	mutex_enter(&pp->pr_lock);
   1452  1.267       chs 	pp->pr_minpages = roundup(n, pp->pr_itemsperpage) / pp->pr_itemsperpage;
   1453  1.267       chs 	if (pp->pr_maxpages <= pp->pr_minpages)
   1454   1.74   thorpej 		pp->pr_maxpages = pp->pr_minpages + 1;	/* XXX */
   1455  1.267       chs 	while (pp->pr_npages < pp->pr_minpages)
   1456  1.267       chs 		(void) pool_grow(pp, PR_WAITOK);
   1457  1.134        ad 	mutex_exit(&pp->pr_lock);
   1458   1.74   thorpej }
   1459   1.55   thorpej 
   1460   1.55   thorpej /*
   1461    1.3        pk  * Add a page worth of items to the pool.
   1462   1.21   thorpej  *
   1463   1.21   thorpej  * Note, we must be called with the pool descriptor LOCKED.
   1464    1.3        pk  */
   1465   1.55   thorpej static void
   1466  1.128  christos pool_prime_page(struct pool *pp, void *storage, struct pool_item_header *ph)
   1467    1.3        pk {
   1468  1.236      maxv 	const unsigned int align = pp->pr_align;
   1469    1.3        pk 	struct pool_item *pi;
   1470  1.128  christos 	void *cp = storage;
   1471   1.55   thorpej 	int n;
   1472   1.36        pk 
   1473  1.134        ad 	KASSERT(mutex_owned(&pp->pr_lock));
   1474  1.207  riastrad 	KASSERTMSG(((pp->pr_roflags & PR_NOALIGN) ||
   1475  1.207  riastrad 		(((uintptr_t)cp & (pp->pr_alloc->pa_pagesz - 1)) == 0)),
   1476  1.213  christos 	    "%s: [%s] unaligned page: %p", __func__, pp->pr_wchan, cp);
   1477    1.3        pk 
   1478    1.3        pk 	/*
   1479    1.3        pk 	 * Insert page header.
   1480    1.3        pk 	 */
   1481   1.88       chs 	LIST_INSERT_HEAD(&pp->pr_emptypages, ph, ph_pagelist);
   1482  1.102       chs 	LIST_INIT(&ph->ph_itemlist);
   1483    1.3        pk 	ph->ph_page = storage;
   1484    1.3        pk 	ph->ph_nmissing = 0;
   1485  1.151      yamt 	ph->ph_time = time_uptime;
   1486  1.245      maxv 	if (pp->pr_roflags & PR_PHINPAGE)
   1487  1.245      maxv 		ph->ph_poolid = pp->pr_poolid;
   1488  1.245      maxv 	else
   1489   1.88       chs 		SPLAY_INSERT(phtree, &pp->pr_phtree, ph);
   1490    1.3        pk 
   1491    1.6   thorpej 	pp->pr_nidle++;
   1492    1.6   thorpej 
   1493    1.3        pk 	/*
   1494  1.241      maxv 	 * The item space starts after the on-page header, if any.
   1495  1.241      maxv 	 */
   1496  1.241      maxv 	ph->ph_off = pp->pr_itemoffset;
   1497  1.241      maxv 
   1498  1.241      maxv 	/*
   1499    1.3        pk 	 * Color this page.
   1500    1.3        pk 	 */
   1501  1.241      maxv 	ph->ph_off += pp->pr_curcolor;
   1502  1.141      yamt 	cp = (char *)cp + ph->ph_off;
   1503    1.3        pk 	if ((pp->pr_curcolor += align) > pp->pr_maxcolor)
   1504    1.3        pk 		pp->pr_curcolor = 0;
   1505    1.3        pk 
   1506  1.238      maxv 	KASSERT((((vaddr_t)cp) & (align - 1)) == 0);
   1507  1.125        ad 
   1508    1.3        pk 	/*
   1509    1.3        pk 	 * Insert remaining chunks on the bucket list.
   1510    1.3        pk 	 */
   1511    1.3        pk 	n = pp->pr_itemsperpage;
   1512   1.20   thorpej 	pp->pr_nitems += n;
   1513    1.3        pk 
   1514  1.242      maxv 	if (pp->pr_roflags & PR_USEBMAP) {
   1515  1.234      maxv 		pr_item_bitmap_init(pp, ph);
   1516   1.97      yamt 	} else {
   1517   1.97      yamt 		while (n--) {
   1518   1.97      yamt 			pi = (struct pool_item *)cp;
   1519   1.78   thorpej 
   1520  1.238      maxv 			KASSERT((((vaddr_t)pi) & (align - 1)) == 0);
   1521    1.3        pk 
   1522   1.97      yamt 			/* Insert on page list */
   1523  1.102       chs 			LIST_INSERT_HEAD(&ph->ph_itemlist, pi, pi_list);
   1524  1.229      maxv #ifdef POOL_CHECK_MAGIC
   1525   1.97      yamt 			pi->pi_magic = PI_MAGIC;
   1526    1.3        pk #endif
   1527  1.128  christos 			cp = (char *)cp + pp->pr_size;
   1528  1.125        ad 
   1529  1.238      maxv 			KASSERT((((vaddr_t)cp) & (align - 1)) == 0);
   1530   1.97      yamt 		}
   1531    1.3        pk 	}
   1532    1.3        pk 
   1533    1.3        pk 	/*
   1534    1.3        pk 	 * If the pool was depleted, point at the new page.
   1535    1.3        pk 	 */
   1536    1.3        pk 	if (pp->pr_curpage == NULL)
   1537    1.3        pk 		pp->pr_curpage = ph;
   1538    1.3        pk 
   1539    1.3        pk 	if (++pp->pr_npages > pp->pr_hiwat)
   1540    1.3        pk 		pp->pr_hiwat = pp->pr_npages;
   1541    1.3        pk }
   1542    1.3        pk 
   1543   1.20   thorpej /*
   1544   1.52   thorpej  * Used by pool_get() when nitems drops below the low water mark.  This
   1545   1.88       chs  * is used to catch up pr_nitems with the low water mark.
   1546   1.20   thorpej  *
   1547   1.21   thorpej  * Note 1, we never wait for memory here, we let the caller decide what to do.
   1548   1.20   thorpej  *
   1549   1.73   thorpej  * Note 2, we must be called with the pool already locked, and we return
   1550   1.20   thorpej  * with it locked.
   1551   1.20   thorpej  */
   1552   1.20   thorpej static int
   1553   1.42   thorpej pool_catchup(struct pool *pp)
   1554   1.20   thorpej {
   1555   1.20   thorpej 	int error = 0;
   1556   1.20   thorpej 
   1557   1.54   thorpej 	while (POOL_NEEDS_CATCHUP(pp)) {
   1558  1.113      yamt 		error = pool_grow(pp, PR_NOWAIT);
   1559  1.113      yamt 		if (error) {
   1560  1.214  christos 			if (error == ERESTART)
   1561  1.214  christos 				continue;
   1562   1.20   thorpej 			break;
   1563   1.20   thorpej 		}
   1564   1.20   thorpej 	}
   1565  1.113      yamt 	return error;
   1566   1.20   thorpej }
   1567   1.20   thorpej 
   1568   1.88       chs static void
   1569   1.88       chs pool_update_curpage(struct pool *pp)
   1570   1.88       chs {
   1571   1.88       chs 
   1572   1.88       chs 	pp->pr_curpage = LIST_FIRST(&pp->pr_partpages);
   1573   1.88       chs 	if (pp->pr_curpage == NULL) {
   1574   1.88       chs 		pp->pr_curpage = LIST_FIRST(&pp->pr_emptypages);
   1575   1.88       chs 	}
   1576  1.289  riastrad 	KASSERTMSG((pp->pr_curpage == NULL) == (pp->pr_nitems == 0),
   1577  1.289  riastrad 	    "pp=%p curpage=%p nitems=%u", pp, pp->pr_curpage, pp->pr_nitems);
   1578   1.88       chs }
   1579   1.88       chs 
   1580    1.3        pk void
   1581   1.42   thorpej pool_setlowat(struct pool *pp, int n)
   1582    1.3        pk {
   1583   1.15        pk 
   1584  1.134        ad 	mutex_enter(&pp->pr_lock);
   1585    1.3        pk 	pp->pr_minitems = n;
   1586   1.20   thorpej 
   1587   1.20   thorpej 	/* Make sure we're caught up with the newly-set low water mark. */
   1588   1.75    simonb 	if (POOL_NEEDS_CATCHUP(pp) && pool_catchup(pp) != 0) {
   1589   1.20   thorpej 		/*
   1590   1.20   thorpej 		 * XXX: Should we log a warning?  Should we set up a timeout
   1591   1.20   thorpej 		 * to try again in a second or so?  The latter could break
   1592   1.20   thorpej 		 * a caller's assumptions about interrupt protection, etc.
   1593   1.20   thorpej 		 */
   1594   1.20   thorpej 	}
   1595   1.21   thorpej 
   1596  1.134        ad 	mutex_exit(&pp->pr_lock);
   1597    1.3        pk }
   1598    1.3        pk 
   1599    1.3        pk void
   1600   1.42   thorpej pool_sethiwat(struct pool *pp, int n)
   1601    1.3        pk {
   1602   1.15        pk 
   1603  1.134        ad 	mutex_enter(&pp->pr_lock);
   1604   1.21   thorpej 
   1605  1.267       chs 	pp->pr_maxitems = n;
   1606   1.21   thorpej 
   1607  1.134        ad 	mutex_exit(&pp->pr_lock);
   1608    1.3        pk }
   1609    1.3        pk 
   1610   1.20   thorpej void
   1611   1.42   thorpej pool_sethardlimit(struct pool *pp, int n, const char *warnmess, int ratecap)
   1612   1.20   thorpej {
   1613   1.20   thorpej 
   1614  1.134        ad 	mutex_enter(&pp->pr_lock);
   1615   1.20   thorpej 
   1616   1.20   thorpej 	pp->pr_hardlimit = n;
   1617   1.20   thorpej 	pp->pr_hardlimit_warning = warnmess;
   1618   1.31   thorpej 	pp->pr_hardlimit_ratecap.tv_sec = ratecap;
   1619   1.31   thorpej 	pp->pr_hardlimit_warning_last.tv_sec = 0;
   1620   1.31   thorpej 	pp->pr_hardlimit_warning_last.tv_usec = 0;
   1621   1.20   thorpej 
   1622  1.267       chs 	pp->pr_maxpages = roundup(n, pp->pr_itemsperpage) / pp->pr_itemsperpage;
   1623   1.21   thorpej 
   1624  1.134        ad 	mutex_exit(&pp->pr_lock);
   1625   1.20   thorpej }
   1626    1.3        pk 
   1627  1.277    simonb unsigned int
   1628  1.277    simonb pool_nget(struct pool *pp)
   1629  1.277    simonb {
   1630  1.277    simonb 
   1631  1.277    simonb 	return pp->pr_nget;
   1632  1.277    simonb }
   1633  1.277    simonb 
   1634  1.277    simonb unsigned int
   1635  1.277    simonb pool_nput(struct pool *pp)
   1636  1.277    simonb {
   1637  1.277    simonb 
   1638  1.277    simonb 	return pp->pr_nput;
   1639  1.277    simonb }
   1640  1.277    simonb 
   1641    1.3        pk /*
   1642    1.3        pk  * Release all complete pages that have not been used recently.
   1643  1.184     rmind  *
   1644  1.197       jym  * Must not be called from interrupt context.
   1645    1.3        pk  */
   1646   1.66   thorpej int
   1647   1.56  sommerfe pool_reclaim(struct pool *pp)
   1648    1.3        pk {
   1649    1.3        pk 	struct pool_item_header *ph, *phnext;
   1650   1.61       chs 	struct pool_pagelist pq;
   1651  1.281  riastrad 	struct pool_cache *pc;
   1652  1.151      yamt 	uint32_t curtime;
   1653  1.134        ad 	bool klock;
   1654  1.134        ad 	int rv;
   1655    1.3        pk 
   1656  1.288  riastrad 	KASSERT(!cpu_intr_p());
   1657  1.288  riastrad 	KASSERT(!cpu_softintr_p());
   1658  1.184     rmind 
   1659   1.68   thorpej 	if (pp->pr_drain_hook != NULL) {
   1660   1.68   thorpej 		/*
   1661   1.68   thorpej 		 * The drain hook must be called with the pool unlocked.
   1662   1.68   thorpej 		 */
   1663   1.68   thorpej 		(*pp->pr_drain_hook)(pp->pr_drain_hook_arg, PR_NOWAIT);
   1664   1.68   thorpej 	}
   1665   1.68   thorpej 
   1666  1.134        ad 	/*
   1667  1.157        ad 	 * XXXSMP Because we do not want to cause non-MPSAFE code
   1668  1.157        ad 	 * to block.
   1669  1.134        ad 	 */
   1670  1.134        ad 	if (pp->pr_ipl == IPL_SOFTNET || pp->pr_ipl == IPL_SOFTCLOCK ||
   1671  1.134        ad 	    pp->pr_ipl == IPL_SOFTSERIAL) {
   1672  1.134        ad 		KERNEL_LOCK(1, NULL);
   1673  1.134        ad 		klock = true;
   1674  1.134        ad 	} else
   1675  1.134        ad 		klock = false;
   1676  1.134        ad 
   1677  1.134        ad 	/* Reclaim items from the pool's cache (if any). */
   1678  1.281  riastrad 	if ((pc = atomic_load_consume(&pp->pr_cache)) != NULL)
   1679  1.281  riastrad 		pool_cache_invalidate(pc);
   1680  1.134        ad 
   1681  1.134        ad 	if (mutex_tryenter(&pp->pr_lock) == 0) {
   1682  1.134        ad 		if (klock) {
   1683  1.134        ad 			KERNEL_UNLOCK_ONE(NULL);
   1684  1.134        ad 		}
   1685  1.236      maxv 		return 0;
   1686  1.134        ad 	}
   1687   1.68   thorpej 
   1688   1.88       chs 	LIST_INIT(&pq);
   1689   1.43   thorpej 
   1690  1.151      yamt 	curtime = time_uptime;
   1691   1.21   thorpej 
   1692   1.88       chs 	for (ph = LIST_FIRST(&pp->pr_emptypages); ph != NULL; ph = phnext) {
   1693   1.88       chs 		phnext = LIST_NEXT(ph, ph_pagelist);
   1694    1.3        pk 
   1695    1.3        pk 		/* Check our minimum page claim */
   1696    1.3        pk 		if (pp->pr_npages <= pp->pr_minpages)
   1697    1.3        pk 			break;
   1698    1.3        pk 
   1699   1.88       chs 		KASSERT(ph->ph_nmissing == 0);
   1700  1.191      para 		if (curtime - ph->ph_time < pool_inactive_time)
   1701   1.88       chs 			continue;
   1702   1.21   thorpej 
   1703   1.88       chs 		/*
   1704  1.267       chs 		 * If freeing this page would put us below the minimum free items
   1705  1.267       chs 		 * or the minimum pages, stop now.
   1706   1.88       chs 		 */
   1707  1.267       chs 		if (pp->pr_nitems - pp->pr_itemsperpage < pp->pr_minitems ||
   1708  1.267       chs 		    pp->pr_npages - 1 < pp->pr_minpages)
   1709   1.88       chs 			break;
   1710   1.21   thorpej 
   1711   1.88       chs 		pr_rmpage(pp, ph, &pq);
   1712    1.3        pk 	}
   1713    1.3        pk 
   1714  1.134        ad 	mutex_exit(&pp->pr_lock);
   1715  1.134        ad 
   1716  1.134        ad 	if (LIST_EMPTY(&pq))
   1717  1.134        ad 		rv = 0;
   1718  1.134        ad 	else {
   1719  1.134        ad 		pr_pagelist_free(pp, &pq);
   1720  1.134        ad 		rv = 1;
   1721  1.134        ad 	}
   1722  1.134        ad 
   1723  1.134        ad 	if (klock) {
   1724  1.134        ad 		KERNEL_UNLOCK_ONE(NULL);
   1725  1.134        ad 	}
   1726   1.66   thorpej 
   1727  1.236      maxv 	return rv;
   1728    1.3        pk }
   1729    1.3        pk 
   1730    1.3        pk /*
   1731  1.197       jym  * Drain pools, one at a time. The drained pool is returned within ppp.
   1732  1.131        ad  *
   1733  1.134        ad  * Note, must never be called from interrupt context.
   1734    1.3        pk  */
   1735  1.197       jym bool
   1736  1.197       jym pool_drain(struct pool **ppp)
   1737    1.3        pk {
   1738  1.197       jym 	bool reclaimed;
   1739    1.3        pk 	struct pool *pp;
   1740  1.134        ad 
   1741  1.145        ad 	KASSERT(!TAILQ_EMPTY(&pool_head));
   1742    1.3        pk 
   1743   1.61       chs 	pp = NULL;
   1744  1.134        ad 
   1745  1.134        ad 	/* Find next pool to drain, and add a reference. */
   1746  1.134        ad 	mutex_enter(&pool_head_lock);
   1747  1.134        ad 	do {
   1748  1.134        ad 		if (drainpp == NULL) {
   1749  1.145        ad 			drainpp = TAILQ_FIRST(&pool_head);
   1750  1.134        ad 		}
   1751  1.134        ad 		if (drainpp != NULL) {
   1752  1.134        ad 			pp = drainpp;
   1753  1.145        ad 			drainpp = TAILQ_NEXT(pp, pr_poollist);
   1754  1.134        ad 		}
   1755  1.134        ad 		/*
   1756  1.134        ad 		 * Skip completely idle pools.  We depend on at least
   1757  1.134        ad 		 * one pool in the system being active.
   1758  1.134        ad 		 */
   1759  1.134        ad 	} while (pp == NULL || pp->pr_npages == 0);
   1760  1.134        ad 	pp->pr_refcnt++;
   1761  1.134        ad 	mutex_exit(&pool_head_lock);
   1762  1.134        ad 
   1763  1.134        ad 	/* Drain the cache (if any) and pool.. */
   1764  1.186     pooka 	reclaimed = pool_reclaim(pp);
   1765  1.134        ad 
   1766  1.134        ad 	/* Finally, unlock the pool. */
   1767  1.134        ad 	mutex_enter(&pool_head_lock);
   1768  1.134        ad 	pp->pr_refcnt--;
   1769  1.134        ad 	cv_broadcast(&pool_busy);
   1770  1.134        ad 	mutex_exit(&pool_head_lock);
   1771  1.186     pooka 
   1772  1.197       jym 	if (ppp != NULL)
   1773  1.197       jym 		*ppp = pp;
   1774  1.197       jym 
   1775  1.186     pooka 	return reclaimed;
   1776    1.3        pk }
   1777    1.3        pk 
   1778    1.3        pk /*
   1779  1.217       mrg  * Calculate the total number of pages consumed by pools.
   1780  1.217       mrg  */
   1781  1.217       mrg int
   1782  1.217       mrg pool_totalpages(void)
   1783  1.217       mrg {
   1784  1.250     skrll 
   1785  1.250     skrll 	mutex_enter(&pool_head_lock);
   1786  1.250     skrll 	int pages = pool_totalpages_locked();
   1787  1.250     skrll 	mutex_exit(&pool_head_lock);
   1788  1.250     skrll 
   1789  1.250     skrll 	return pages;
   1790  1.250     skrll }
   1791  1.250     skrll 
   1792  1.250     skrll int
   1793  1.250     skrll pool_totalpages_locked(void)
   1794  1.250     skrll {
   1795  1.217       mrg 	struct pool *pp;
   1796  1.218       mrg 	uint64_t total = 0;
   1797  1.217       mrg 
   1798  1.218       mrg 	TAILQ_FOREACH(pp, &pool_head, pr_poollist) {
   1799  1.285    simonb 		uint64_t bytes =
   1800  1.285    simonb 		    (uint64_t)pp->pr_npages * pp->pr_alloc->pa_pagesz;
   1801  1.218       mrg 
   1802  1.218       mrg 		if ((pp->pr_roflags & PR_RECURSIVE) != 0)
   1803  1.285    simonb 			bytes -= ((uint64_t)pp->pr_nout * pp->pr_size);
   1804  1.218       mrg 		total += bytes;
   1805  1.218       mrg 	}
   1806  1.217       mrg 
   1807  1.218       mrg 	return atop(total);
   1808  1.217       mrg }
   1809  1.217       mrg 
   1810  1.217       mrg /*
   1811    1.3        pk  * Diagnostic helpers.
   1812    1.3        pk  */
   1813   1.21   thorpej 
   1814   1.25   thorpej void
   1815  1.108      yamt pool_printall(const char *modif, void (*pr)(const char *, ...))
   1816  1.108      yamt {
   1817  1.108      yamt 	struct pool *pp;
   1818  1.108      yamt 
   1819  1.145        ad 	TAILQ_FOREACH(pp, &pool_head, pr_poollist) {
   1820  1.108      yamt 		pool_printit(pp, modif, pr);
   1821  1.108      yamt 	}
   1822  1.108      yamt }
   1823  1.108      yamt 
   1824  1.108      yamt void
   1825   1.42   thorpej pool_printit(struct pool *pp, const char *modif, void (*pr)(const char *, ...))
   1826   1.25   thorpej {
   1827   1.25   thorpej 
   1828   1.25   thorpej 	if (pp == NULL) {
   1829   1.25   thorpej 		(*pr)("Must specify a pool to print.\n");
   1830   1.25   thorpej 		return;
   1831   1.25   thorpej 	}
   1832   1.25   thorpej 
   1833   1.25   thorpej 	pool_print1(pp, modif, pr);
   1834   1.25   thorpej }
   1835   1.25   thorpej 
   1836   1.21   thorpej static void
   1837  1.124      yamt pool_print_pagelist(struct pool *pp, struct pool_pagelist *pl,
   1838   1.97      yamt     void (*pr)(const char *, ...))
   1839   1.88       chs {
   1840   1.88       chs 	struct pool_item_header *ph;
   1841   1.88       chs 
   1842   1.88       chs 	LIST_FOREACH(ph, pl, ph_pagelist) {
   1843  1.151      yamt 		(*pr)("\t\tpage %p, nmissing %d, time %" PRIu32 "\n",
   1844  1.151      yamt 		    ph->ph_page, ph->ph_nmissing, ph->ph_time);
   1845  1.229      maxv #ifdef POOL_CHECK_MAGIC
   1846  1.229      maxv 		struct pool_item *pi;
   1847  1.242      maxv 		if (!(pp->pr_roflags & PR_USEBMAP)) {
   1848  1.102       chs 			LIST_FOREACH(pi, &ph->ph_itemlist, pi_list) {
   1849   1.97      yamt 				if (pi->pi_magic != PI_MAGIC) {
   1850   1.97      yamt 					(*pr)("\t\t\titem %p, magic 0x%x\n",
   1851   1.97      yamt 					    pi, pi->pi_magic);
   1852   1.97      yamt 				}
   1853   1.88       chs 			}
   1854   1.88       chs 		}
   1855   1.88       chs #endif
   1856   1.88       chs 	}
   1857   1.88       chs }
   1858   1.88       chs 
   1859   1.88       chs static void
   1860   1.42   thorpej pool_print1(struct pool *pp, const char *modif, void (*pr)(const char *, ...))
   1861    1.3        pk {
   1862   1.25   thorpej 	struct pool_item_header *ph;
   1863  1.134        ad 	pool_cache_t pc;
   1864  1.134        ad 	pcg_t *pcg;
   1865  1.134        ad 	pool_cache_cpu_t *cc;
   1866  1.271        ad 	uint64_t cpuhit, cpumiss, pchit, pcmiss;
   1867  1.271        ad 	uint32_t nfull;
   1868  1.275       mrg 	int i;
   1869  1.275       mrg 	bool print_log = false, print_pagelist = false, print_cache = false;
   1870  1.275       mrg 	bool print_short = false, skip_empty = false;
   1871   1.25   thorpej 	char c;
   1872   1.25   thorpej 
   1873   1.25   thorpej 	while ((c = *modif++) != '\0') {
   1874   1.25   thorpej 		if (c == 'l')
   1875  1.275       mrg 			print_log = true;
   1876   1.25   thorpej 		if (c == 'p')
   1877  1.275       mrg 			print_pagelist = true;
   1878   1.44   thorpej 		if (c == 'c')
   1879  1.275       mrg 			print_cache = true;
   1880  1.275       mrg 		if (c == 's')
   1881  1.275       mrg 			print_short = true;
   1882  1.275       mrg 		if (c == 'S')
   1883  1.275       mrg 			skip_empty = true;
   1884   1.25   thorpej 	}
   1885   1.25   thorpej 
   1886  1.275       mrg 	if (skip_empty && pp->pr_nget == 0)
   1887  1.275       mrg 		return;
   1888  1.275       mrg 
   1889  1.281  riastrad 	if ((pc = atomic_load_consume(&pp->pr_cache)) != NULL) {
   1890  1.275       mrg 		(*pr)("POOLCACHE");
   1891  1.134        ad 	} else {
   1892  1.134        ad 		(*pr)("POOL");
   1893  1.134        ad 	}
   1894  1.134        ad 
   1895  1.275       mrg 	/* Single line output. */
   1896  1.275       mrg 	if (print_short) {
   1897  1.275       mrg 		(*pr)(" %s:%p:%u:%u:%u:%u:%u:%u:%u:%u:%u:%u\n",
   1898  1.275       mrg 		    pp->pr_wchan, pp, pp->pr_size, pp->pr_align, pp->pr_npages,
   1899  1.275       mrg 		    pp->pr_nitems, pp->pr_nout, pp->pr_nget, pp->pr_nput,
   1900  1.275       mrg 		    pp->pr_npagealloc, pp->pr_npagefree, pp->pr_nidle);
   1901  1.275       mrg 		return;
   1902  1.275       mrg 	}
   1903  1.275       mrg 
   1904  1.134        ad 	(*pr)(" %s: size %u, align %u, ioff %u, roflags 0x%08x\n",
   1905   1.25   thorpej 	    pp->pr_wchan, pp->pr_size, pp->pr_align, pp->pr_itemoffset,
   1906   1.25   thorpej 	    pp->pr_roflags);
   1907  1.275       mrg 	(*pr)("\tpool %p, alloc %p\n", pp, pp->pr_alloc);
   1908   1.25   thorpej 	(*pr)("\tminitems %u, minpages %u, maxpages %u, npages %u\n",
   1909   1.25   thorpej 	    pp->pr_minitems, pp->pr_minpages, pp->pr_maxpages, pp->pr_npages);
   1910   1.25   thorpej 	(*pr)("\titemsperpage %u, nitems %u, nout %u, hardlimit %u\n",
   1911   1.25   thorpej 	    pp->pr_itemsperpage, pp->pr_nitems, pp->pr_nout, pp->pr_hardlimit);
   1912   1.25   thorpej 
   1913  1.134        ad 	(*pr)("\tnget %lu, nfail %lu, nput %lu\n",
   1914   1.25   thorpej 	    pp->pr_nget, pp->pr_nfail, pp->pr_nput);
   1915   1.25   thorpej 	(*pr)("\tnpagealloc %lu, npagefree %lu, hiwat %u, nidle %lu\n",
   1916   1.25   thorpej 	    pp->pr_npagealloc, pp->pr_npagefree, pp->pr_hiwat, pp->pr_nidle);
   1917   1.25   thorpej 
   1918  1.275       mrg 	if (!print_pagelist)
   1919   1.25   thorpej 		goto skip_pagelist;
   1920   1.25   thorpej 
   1921   1.88       chs 	if ((ph = LIST_FIRST(&pp->pr_emptypages)) != NULL)
   1922   1.88       chs 		(*pr)("\n\tempty page list:\n");
   1923   1.97      yamt 	pool_print_pagelist(pp, &pp->pr_emptypages, pr);
   1924   1.88       chs 	if ((ph = LIST_FIRST(&pp->pr_fullpages)) != NULL)
   1925   1.88       chs 		(*pr)("\n\tfull page list:\n");
   1926   1.97      yamt 	pool_print_pagelist(pp, &pp->pr_fullpages, pr);
   1927   1.88       chs 	if ((ph = LIST_FIRST(&pp->pr_partpages)) != NULL)
   1928   1.88       chs 		(*pr)("\n\tpartial-page list:\n");
   1929   1.97      yamt 	pool_print_pagelist(pp, &pp->pr_partpages, pr);
   1930   1.88       chs 
   1931   1.25   thorpej 	if (pp->pr_curpage == NULL)
   1932   1.25   thorpej 		(*pr)("\tno current page\n");
   1933   1.25   thorpej 	else
   1934   1.25   thorpej 		(*pr)("\tcurpage %p\n", pp->pr_curpage->ph_page);
   1935   1.25   thorpej 
   1936   1.25   thorpej  skip_pagelist:
   1937  1.275       mrg 	if (print_log)
   1938   1.25   thorpej 		goto skip_log;
   1939   1.25   thorpej 
   1940   1.25   thorpej 	(*pr)("\n");
   1941    1.3        pk 
   1942   1.25   thorpej  skip_log:
   1943   1.44   thorpej 
   1944  1.102       chs #define PR_GROUPLIST(pcg)						\
   1945  1.102       chs 	(*pr)("\t\tgroup %p: avail %d\n", pcg, pcg->pcg_avail);		\
   1946  1.142        ad 	for (i = 0; i < pcg->pcg_size; i++) {				\
   1947  1.102       chs 		if (pcg->pcg_objects[i].pcgo_pa !=			\
   1948  1.102       chs 		    POOL_PADDR_INVALID) {				\
   1949  1.102       chs 			(*pr)("\t\t\t%p, 0x%llx\n",			\
   1950  1.102       chs 			    pcg->pcg_objects[i].pcgo_va,		\
   1951  1.102       chs 			    (unsigned long long)			\
   1952  1.102       chs 			    pcg->pcg_objects[i].pcgo_pa);		\
   1953  1.102       chs 		} else {						\
   1954  1.102       chs 			(*pr)("\t\t\t%p\n",				\
   1955  1.102       chs 			    pcg->pcg_objects[i].pcgo_va);		\
   1956  1.102       chs 		}							\
   1957  1.102       chs 	}
   1958  1.102       chs 
   1959  1.134        ad 	if (pc != NULL) {
   1960  1.134        ad 		cpuhit = 0;
   1961  1.134        ad 		cpumiss = 0;
   1962  1.271        ad 		pcmiss = 0;
   1963  1.271        ad 		nfull = 0;
   1964  1.183        ad 		for (i = 0; i < __arraycount(pc->pc_cpus); i++) {
   1965  1.134        ad 			if ((cc = pc->pc_cpus[i]) == NULL)
   1966  1.134        ad 				continue;
   1967  1.134        ad 			cpuhit += cc->cc_hits;
   1968  1.134        ad 			cpumiss += cc->cc_misses;
   1969  1.271        ad 			pcmiss += cc->cc_pcmisses;
   1970  1.271        ad 			nfull += cc->cc_nfull;
   1971  1.134        ad 		}
   1972  1.271        ad 		pchit = cpumiss - pcmiss;
   1973  1.134        ad 		(*pr)("\tcpu layer hits %llu misses %llu\n", cpuhit, cpumiss);
   1974  1.271        ad 		(*pr)("\tcache layer hits %llu misses %llu\n", pchit, pcmiss);
   1975  1.271        ad 		(*pr)("\tcache layer full groups %u\n", nfull);
   1976  1.134        ad 		if (print_cache) {
   1977  1.134        ad 			(*pr)("\tfull cache groups:\n");
   1978  1.134        ad 			for (pcg = pc->pc_fullgroups; pcg != NULL;
   1979  1.134        ad 			    pcg = pcg->pcg_next) {
   1980  1.134        ad 				PR_GROUPLIST(pcg);
   1981  1.134        ad 			}
   1982  1.103       chs 		}
   1983   1.44   thorpej 	}
   1984  1.102       chs #undef PR_GROUPLIST
   1985   1.88       chs }
   1986   1.88       chs 
   1987   1.88       chs static int
   1988   1.88       chs pool_chk_page(struct pool *pp, const char *label, struct pool_item_header *ph)
   1989   1.88       chs {
   1990   1.88       chs 	struct pool_item *pi;
   1991  1.128  christos 	void *page;
   1992   1.88       chs 	int n;
   1993   1.88       chs 
   1994  1.121      yamt 	if ((pp->pr_roflags & PR_NOALIGN) == 0) {
   1995  1.253      maxv 		page = POOL_OBJ_TO_PAGE(pp, ph);
   1996  1.121      yamt 		if (page != ph->ph_page &&
   1997  1.121      yamt 		    (pp->pr_roflags & PR_PHINPAGE) != 0) {
   1998  1.121      yamt 			if (label != NULL)
   1999  1.121      yamt 				printf("%s: ", label);
   2000  1.121      yamt 			printf("pool(%p:%s): page inconsistency: page %p;"
   2001  1.121      yamt 			       " at page head addr %p (p %p)\n", pp,
   2002  1.121      yamt 				pp->pr_wchan, ph->ph_page,
   2003  1.121      yamt 				ph, page);
   2004  1.121      yamt 			return 1;
   2005  1.121      yamt 		}
   2006   1.88       chs 	}
   2007    1.3        pk 
   2008  1.242      maxv 	if ((pp->pr_roflags & PR_USEBMAP) != 0)
   2009   1.97      yamt 		return 0;
   2010   1.97      yamt 
   2011  1.102       chs 	for (pi = LIST_FIRST(&ph->ph_itemlist), n = 0;
   2012   1.88       chs 	     pi != NULL;
   2013  1.102       chs 	     pi = LIST_NEXT(pi,pi_list), n++) {
   2014   1.88       chs 
   2015  1.229      maxv #ifdef POOL_CHECK_MAGIC
   2016   1.88       chs 		if (pi->pi_magic != PI_MAGIC) {
   2017   1.88       chs 			if (label != NULL)
   2018   1.88       chs 				printf("%s: ", label);
   2019   1.88       chs 			printf("pool(%s): free list modified: magic=%x;"
   2020  1.121      yamt 			       " page %p; item ordinal %d; addr %p\n",
   2021   1.88       chs 				pp->pr_wchan, pi->pi_magic, ph->ph_page,
   2022  1.121      yamt 				n, pi);
   2023   1.88       chs 			panic("pool");
   2024   1.88       chs 		}
   2025   1.88       chs #endif
   2026  1.121      yamt 		if ((pp->pr_roflags & PR_NOALIGN) != 0) {
   2027  1.121      yamt 			continue;
   2028  1.121      yamt 		}
   2029  1.253      maxv 		page = POOL_OBJ_TO_PAGE(pp, pi);
   2030   1.88       chs 		if (page == ph->ph_page)
   2031   1.88       chs 			continue;
   2032   1.88       chs 
   2033   1.88       chs 		if (label != NULL)
   2034   1.88       chs 			printf("%s: ", label);
   2035   1.88       chs 		printf("pool(%p:%s): page inconsistency: page %p;"
   2036   1.88       chs 		       " item ordinal %d; addr %p (p %p)\n", pp,
   2037   1.88       chs 			pp->pr_wchan, ph->ph_page,
   2038   1.88       chs 			n, pi, page);
   2039   1.88       chs 		return 1;
   2040   1.88       chs 	}
   2041   1.88       chs 	return 0;
   2042    1.3        pk }
   2043    1.3        pk 
   2044   1.88       chs 
   2045    1.3        pk int
   2046   1.42   thorpej pool_chk(struct pool *pp, const char *label)
   2047    1.3        pk {
   2048    1.3        pk 	struct pool_item_header *ph;
   2049    1.3        pk 	int r = 0;
   2050    1.3        pk 
   2051  1.134        ad 	mutex_enter(&pp->pr_lock);
   2052   1.88       chs 	LIST_FOREACH(ph, &pp->pr_emptypages, ph_pagelist) {
   2053   1.88       chs 		r = pool_chk_page(pp, label, ph);
   2054   1.88       chs 		if (r) {
   2055   1.88       chs 			goto out;
   2056   1.88       chs 		}
   2057   1.88       chs 	}
   2058   1.88       chs 	LIST_FOREACH(ph, &pp->pr_fullpages, ph_pagelist) {
   2059   1.88       chs 		r = pool_chk_page(pp, label, ph);
   2060   1.88       chs 		if (r) {
   2061    1.3        pk 			goto out;
   2062    1.3        pk 		}
   2063   1.88       chs 	}
   2064   1.88       chs 	LIST_FOREACH(ph, &pp->pr_partpages, ph_pagelist) {
   2065   1.88       chs 		r = pool_chk_page(pp, label, ph);
   2066   1.88       chs 		if (r) {
   2067    1.3        pk 			goto out;
   2068    1.3        pk 		}
   2069    1.3        pk 	}
   2070   1.88       chs 
   2071    1.3        pk out:
   2072  1.134        ad 	mutex_exit(&pp->pr_lock);
   2073  1.236      maxv 	return r;
   2074   1.43   thorpej }
   2075   1.43   thorpej 
   2076   1.43   thorpej /*
   2077   1.43   thorpej  * pool_cache_init:
   2078   1.43   thorpej  *
   2079   1.43   thorpej  *	Initialize a pool cache.
   2080  1.134        ad  */
   2081  1.134        ad pool_cache_t
   2082  1.134        ad pool_cache_init(size_t size, u_int align, u_int align_offset, u_int flags,
   2083  1.134        ad     const char *wchan, struct pool_allocator *palloc, int ipl,
   2084  1.134        ad     int (*ctor)(void *, void *, int), void (*dtor)(void *, void *), void *arg)
   2085  1.134        ad {
   2086  1.134        ad 	pool_cache_t pc;
   2087  1.134        ad 
   2088  1.134        ad 	pc = pool_get(&cache_pool, PR_WAITOK);
   2089  1.134        ad 	if (pc == NULL)
   2090  1.134        ad 		return NULL;
   2091  1.134        ad 
   2092  1.134        ad 	pool_cache_bootstrap(pc, size, align, align_offset, flags, wchan,
   2093  1.134        ad 	   palloc, ipl, ctor, dtor, arg);
   2094  1.134        ad 
   2095  1.134        ad 	return pc;
   2096  1.134        ad }
   2097  1.134        ad 
   2098  1.134        ad /*
   2099  1.134        ad  * pool_cache_bootstrap:
   2100   1.43   thorpej  *
   2101  1.134        ad  *	Kernel-private version of pool_cache_init().  The caller
   2102  1.134        ad  *	provides initial storage.
   2103   1.43   thorpej  */
   2104   1.43   thorpej void
   2105  1.134        ad pool_cache_bootstrap(pool_cache_t pc, size_t size, u_int align,
   2106  1.134        ad     u_int align_offset, u_int flags, const char *wchan,
   2107  1.134        ad     struct pool_allocator *palloc, int ipl,
   2108  1.134        ad     int (*ctor)(void *, void *, int), void (*dtor)(void *, void *),
   2109   1.43   thorpej     void *arg)
   2110   1.43   thorpej {
   2111  1.134        ad 	CPU_INFO_ITERATOR cii;
   2112  1.145        ad 	pool_cache_t pc1;
   2113  1.134        ad 	struct cpu_info *ci;
   2114  1.134        ad 	struct pool *pp;
   2115  1.280  riastrad 	unsigned int ppflags;
   2116  1.134        ad 
   2117  1.134        ad 	pp = &pc->pc_pool;
   2118  1.208       chs 	if (palloc == NULL && ipl == IPL_NONE) {
   2119  1.208       chs 		if (size > PAGE_SIZE) {
   2120  1.208       chs 			int bigidx = pool_bigidx(size);
   2121  1.208       chs 
   2122  1.208       chs 			palloc = &pool_allocator_big[bigidx];
   2123  1.252      maxv 			flags |= PR_NOALIGN;
   2124  1.208       chs 		} else
   2125  1.208       chs 			palloc = &pool_allocator_nointr;
   2126  1.208       chs 	}
   2127   1.43   thorpej 
   2128  1.280  riastrad 	ppflags = flags;
   2129  1.134        ad 	if (ctor == NULL) {
   2130  1.261  christos 		ctor = NO_CTOR;
   2131  1.134        ad 	}
   2132  1.134        ad 	if (dtor == NULL) {
   2133  1.261  christos 		dtor = NO_DTOR;
   2134  1.279   thorpej 	} else {
   2135  1.279   thorpej 		/*
   2136  1.279   thorpej 		 * If we have a destructor, then the pool layer does not
   2137  1.279   thorpej 		 * need to worry about PR_PSERIALIZE.
   2138  1.279   thorpej 		 */
   2139  1.279   thorpej 		ppflags &= ~PR_PSERIALIZE;
   2140  1.134        ad 	}
   2141   1.43   thorpej 
   2142  1.279   thorpej 	pool_init(pp, size, align, align_offset, ppflags, wchan, palloc, ipl);
   2143  1.279   thorpej 
   2144  1.134        ad 	pc->pc_fullgroups = NULL;
   2145  1.134        ad 	pc->pc_partgroups = NULL;
   2146   1.43   thorpej 	pc->pc_ctor = ctor;
   2147   1.43   thorpej 	pc->pc_dtor = dtor;
   2148   1.43   thorpej 	pc->pc_arg  = arg;
   2149  1.134        ad 	pc->pc_refcnt = 0;
   2150  1.279   thorpej 	pc->pc_roflags = flags;
   2151  1.136      yamt 	pc->pc_freecheck = NULL;
   2152  1.134        ad 
   2153  1.142        ad 	if ((flags & PR_LARGECACHE) != 0) {
   2154  1.142        ad 		pc->pc_pcgsize = PCG_NOBJECTS_LARGE;
   2155  1.163        ad 		pc->pc_pcgpool = &pcg_large_pool;
   2156  1.271        ad 		pc->pc_pcgcache = &pcg_large_cache;
   2157  1.142        ad 	} else {
   2158  1.142        ad 		pc->pc_pcgsize = PCG_NOBJECTS_NORMAL;
   2159  1.163        ad 		pc->pc_pcgpool = &pcg_normal_pool;
   2160  1.271        ad 		pc->pc_pcgcache = &pcg_normal_cache;
   2161  1.142        ad 	}
   2162  1.142        ad 
   2163  1.134        ad 	/* Allocate per-CPU caches. */
   2164  1.134        ad 	memset(pc->pc_cpus, 0, sizeof(pc->pc_cpus));
   2165  1.134        ad 	pc->pc_ncpu = 0;
   2166  1.139        ad 	if (ncpu < 2) {
   2167  1.137        ad 		/* XXX For sparc: boot CPU is not attached yet. */
   2168  1.137        ad 		pool_cache_cpu_init1(curcpu(), pc);
   2169  1.137        ad 	} else {
   2170  1.137        ad 		for (CPU_INFO_FOREACH(cii, ci)) {
   2171  1.137        ad 			pool_cache_cpu_init1(ci, pc);
   2172  1.137        ad 		}
   2173  1.134        ad 	}
   2174  1.145        ad 
   2175  1.145        ad 	/* Add to list of all pools. */
   2176  1.145        ad 	if (__predict_true(!cold))
   2177  1.134        ad 		mutex_enter(&pool_head_lock);
   2178  1.145        ad 	TAILQ_FOREACH(pc1, &pool_cache_head, pc_cachelist) {
   2179  1.145        ad 		if (strcmp(pc1->pc_pool.pr_wchan, pc->pc_pool.pr_wchan) > 0)
   2180  1.145        ad 			break;
   2181  1.145        ad 	}
   2182  1.145        ad 	if (pc1 == NULL)
   2183  1.145        ad 		TAILQ_INSERT_TAIL(&pool_cache_head, pc, pc_cachelist);
   2184  1.145        ad 	else
   2185  1.145        ad 		TAILQ_INSERT_BEFORE(pc1, pc, pc_cachelist);
   2186  1.145        ad 	if (__predict_true(!cold))
   2187  1.134        ad 		mutex_exit(&pool_head_lock);
   2188  1.145        ad 
   2189  1.281  riastrad 	atomic_store_release(&pp->pr_cache, pc);
   2190   1.43   thorpej }
   2191   1.43   thorpej 
   2192   1.43   thorpej /*
   2193   1.43   thorpej  * pool_cache_destroy:
   2194   1.43   thorpej  *
   2195   1.43   thorpej  *	Destroy a pool cache.
   2196   1.43   thorpej  */
   2197   1.43   thorpej void
   2198  1.134        ad pool_cache_destroy(pool_cache_t pc)
   2199   1.43   thorpej {
   2200  1.191      para 
   2201  1.191      para 	pool_cache_bootstrap_destroy(pc);
   2202  1.191      para 	pool_put(&cache_pool, pc);
   2203  1.191      para }
   2204  1.191      para 
   2205  1.191      para /*
   2206  1.191      para  * pool_cache_bootstrap_destroy:
   2207  1.191      para  *
   2208  1.191      para  *	Destroy a pool cache.
   2209  1.191      para  */
   2210  1.191      para void
   2211  1.191      para pool_cache_bootstrap_destroy(pool_cache_t pc)
   2212  1.191      para {
   2213  1.134        ad 	struct pool *pp = &pc->pc_pool;
   2214  1.175       jym 	u_int i;
   2215  1.134        ad 
   2216  1.134        ad 	/* Remove it from the global list. */
   2217  1.134        ad 	mutex_enter(&pool_head_lock);
   2218  1.134        ad 	while (pc->pc_refcnt != 0)
   2219  1.134        ad 		cv_wait(&pool_busy, &pool_head_lock);
   2220  1.145        ad 	TAILQ_REMOVE(&pool_cache_head, pc, pc_cachelist);
   2221  1.134        ad 	mutex_exit(&pool_head_lock);
   2222   1.43   thorpej 
   2223   1.43   thorpej 	/* First, invalidate the entire cache. */
   2224   1.43   thorpej 	pool_cache_invalidate(pc);
   2225   1.43   thorpej 
   2226  1.134        ad 	/* Disassociate it from the pool. */
   2227  1.134        ad 	mutex_enter(&pp->pr_lock);
   2228  1.281  riastrad 	atomic_store_relaxed(&pp->pr_cache, NULL);
   2229  1.134        ad 	mutex_exit(&pp->pr_lock);
   2230  1.134        ad 
   2231  1.134        ad 	/* Destroy per-CPU data */
   2232  1.183        ad 	for (i = 0; i < __arraycount(pc->pc_cpus); i++)
   2233  1.175       jym 		pool_cache_invalidate_cpu(pc, i);
   2234  1.134        ad 
   2235  1.134        ad 	/* Finally, destroy it. */
   2236  1.134        ad 	pool_destroy(pp);
   2237  1.134        ad }
   2238  1.134        ad 
   2239  1.134        ad /*
   2240  1.134        ad  * pool_cache_cpu_init1:
   2241  1.134        ad  *
   2242  1.134        ad  *	Called for each pool_cache whenever a new CPU is attached.
   2243  1.134        ad  */
   2244  1.134        ad static void
   2245  1.134        ad pool_cache_cpu_init1(struct cpu_info *ci, pool_cache_t pc)
   2246  1.134        ad {
   2247  1.134        ad 	pool_cache_cpu_t *cc;
   2248  1.137        ad 	int index;
   2249  1.134        ad 
   2250  1.137        ad 	index = ci->ci_index;
   2251  1.137        ad 
   2252  1.183        ad 	KASSERT(index < __arraycount(pc->pc_cpus));
   2253  1.134        ad 
   2254  1.137        ad 	if ((cc = pc->pc_cpus[index]) != NULL) {
   2255  1.134        ad 		return;
   2256  1.134        ad 	}
   2257  1.134        ad 
   2258  1.134        ad 	/*
   2259  1.134        ad 	 * The first CPU is 'free'.  This needs to be the case for
   2260  1.134        ad 	 * bootstrap - we may not be able to allocate yet.
   2261  1.134        ad 	 */
   2262  1.134        ad 	if (pc->pc_ncpu == 0) {
   2263  1.134        ad 		cc = &pc->pc_cpu0;
   2264  1.134        ad 		pc->pc_ncpu = 1;
   2265  1.134        ad 	} else {
   2266  1.134        ad 		pc->pc_ncpu++;
   2267  1.134        ad 		cc = pool_get(&cache_cpu_pool, PR_WAITOK);
   2268  1.134        ad 	}
   2269  1.134        ad 
   2270  1.271        ad 	cc->cc_current = __UNCONST(&pcg_dummy);
   2271  1.271        ad 	cc->cc_previous = __UNCONST(&pcg_dummy);
   2272  1.271        ad 	cc->cc_pcgcache = pc->pc_pcgcache;
   2273  1.134        ad 	cc->cc_hits = 0;
   2274  1.134        ad 	cc->cc_misses = 0;
   2275  1.271        ad 	cc->cc_pcmisses = 0;
   2276  1.271        ad 	cc->cc_contended = 0;
   2277  1.271        ad 	cc->cc_nfull = 0;
   2278  1.271        ad 	cc->cc_npart = 0;
   2279  1.134        ad 
   2280  1.137        ad 	pc->pc_cpus[index] = cc;
   2281   1.43   thorpej }
   2282   1.43   thorpej 
   2283  1.134        ad /*
   2284  1.134        ad  * pool_cache_cpu_init:
   2285  1.134        ad  *
   2286  1.134        ad  *	Called whenever a new CPU is attached.
   2287  1.134        ad  */
   2288  1.134        ad void
   2289  1.134        ad pool_cache_cpu_init(struct cpu_info *ci)
   2290   1.43   thorpej {
   2291  1.134        ad 	pool_cache_t pc;
   2292  1.134        ad 
   2293  1.134        ad 	mutex_enter(&pool_head_lock);
   2294  1.145        ad 	TAILQ_FOREACH(pc, &pool_cache_head, pc_cachelist) {
   2295  1.134        ad 		pc->pc_refcnt++;
   2296  1.134        ad 		mutex_exit(&pool_head_lock);
   2297   1.43   thorpej 
   2298  1.134        ad 		pool_cache_cpu_init1(ci, pc);
   2299   1.43   thorpej 
   2300  1.134        ad 		mutex_enter(&pool_head_lock);
   2301  1.134        ad 		pc->pc_refcnt--;
   2302  1.134        ad 		cv_broadcast(&pool_busy);
   2303  1.134        ad 	}
   2304  1.134        ad 	mutex_exit(&pool_head_lock);
   2305   1.43   thorpej }
   2306   1.43   thorpej 
   2307  1.134        ad /*
   2308  1.134        ad  * pool_cache_reclaim:
   2309  1.134        ad  *
   2310  1.134        ad  *	Reclaim memory from a pool cache.
   2311  1.134        ad  */
   2312  1.134        ad bool
   2313  1.134        ad pool_cache_reclaim(pool_cache_t pc)
   2314   1.43   thorpej {
   2315   1.43   thorpej 
   2316  1.134        ad 	return pool_reclaim(&pc->pc_pool);
   2317  1.134        ad }
   2318   1.43   thorpej 
   2319  1.278   thorpej static inline void
   2320  1.278   thorpej pool_cache_pre_destruct(pool_cache_t pc)
   2321  1.278   thorpej {
   2322  1.278   thorpej 	/*
   2323  1.279   thorpej 	 * Perform a passive serialization barrier before destructing
   2324  1.279   thorpej 	 * a batch of one or more objects.
   2325  1.278   thorpej 	 */
   2326  1.279   thorpej 	if (__predict_false(pc_has_pser(pc))) {
   2327  1.279   thorpej 		pool_barrier();
   2328  1.278   thorpej 	}
   2329  1.278   thorpej }
   2330  1.278   thorpej 
   2331  1.136      yamt static void
   2332  1.136      yamt pool_cache_destruct_object1(pool_cache_t pc, void *object)
   2333  1.136      yamt {
   2334  1.136      yamt 	(*pc->pc_dtor)(pc->pc_arg, object);
   2335  1.136      yamt 	pool_put(&pc->pc_pool, object);
   2336  1.136      yamt }
   2337  1.136      yamt 
   2338  1.134        ad /*
   2339  1.134        ad  * pool_cache_destruct_object:
   2340  1.134        ad  *
   2341  1.134        ad  *	Force destruction of an object and its release back into
   2342  1.134        ad  *	the pool.
   2343  1.134        ad  */
   2344  1.134        ad void
   2345  1.134        ad pool_cache_destruct_object(pool_cache_t pc, void *object)
   2346  1.134        ad {
   2347  1.134        ad 
   2348  1.136      yamt 	FREECHECK_IN(&pc->pc_freecheck, object);
   2349  1.136      yamt 
   2350  1.278   thorpej 	pool_cache_pre_destruct(pc);
   2351  1.136      yamt 	pool_cache_destruct_object1(pc, object);
   2352   1.43   thorpej }
   2353   1.43   thorpej 
   2354  1.134        ad /*
   2355  1.134        ad  * pool_cache_invalidate_groups:
   2356  1.134        ad  *
   2357  1.271        ad  *	Invalidate a chain of groups and destruct all objects.  Return the
   2358  1.271        ad  *	number of groups that were invalidated.
   2359  1.134        ad  */
   2360  1.271        ad static int
   2361  1.134        ad pool_cache_invalidate_groups(pool_cache_t pc, pcg_t *pcg)
   2362  1.102       chs {
   2363  1.134        ad 	void *object;
   2364  1.134        ad 	pcg_t *next;
   2365  1.271        ad 	int i, n;
   2366  1.134        ad 
   2367  1.278   thorpej 	if (pcg == NULL) {
   2368  1.278   thorpej 		return 0;
   2369  1.278   thorpej 	}
   2370  1.278   thorpej 
   2371  1.278   thorpej 	pool_cache_pre_destruct(pc);
   2372  1.278   thorpej 
   2373  1.271        ad 	for (n = 0; pcg != NULL; pcg = next, n++) {
   2374  1.134        ad 		next = pcg->pcg_next;
   2375  1.134        ad 
   2376  1.134        ad 		for (i = 0; i < pcg->pcg_avail; i++) {
   2377  1.134        ad 			object = pcg->pcg_objects[i].pcgo_va;
   2378  1.136      yamt 			pool_cache_destruct_object1(pc, object);
   2379  1.134        ad 		}
   2380  1.102       chs 
   2381  1.142        ad 		if (pcg->pcg_size == PCG_NOBJECTS_LARGE) {
   2382  1.142        ad 			pool_put(&pcg_large_pool, pcg);
   2383  1.142        ad 		} else {
   2384  1.142        ad 			KASSERT(pcg->pcg_size == PCG_NOBJECTS_NORMAL);
   2385  1.142        ad 			pool_put(&pcg_normal_pool, pcg);
   2386  1.142        ad 		}
   2387  1.102       chs 	}
   2388  1.271        ad 	return n;
   2389  1.102       chs }
   2390  1.102       chs 
   2391   1.43   thorpej /*
   2392  1.134        ad  * pool_cache_invalidate:
   2393   1.43   thorpej  *
   2394  1.134        ad  *	Invalidate a pool cache (destruct and release all of the
   2395  1.134        ad  *	cached objects).  Does not reclaim objects from the pool.
   2396  1.176   thorpej  *
   2397  1.176   thorpej  *	Note: For pool caches that provide constructed objects, there
   2398  1.176   thorpej  *	is an assumption that another level of synchronization is occurring
   2399  1.176   thorpej  *	between the input to the constructor and the cache invalidation.
   2400  1.196       jym  *
   2401  1.196       jym  *	Invalidation is a costly process and should not be called from
   2402  1.196       jym  *	interrupt context.
   2403   1.43   thorpej  */
   2404  1.134        ad void
   2405  1.134        ad pool_cache_invalidate(pool_cache_t pc)
   2406  1.134        ad {
   2407  1.196       jym 	uint64_t where;
   2408  1.271        ad 	pcg_t *pcg;
   2409  1.271        ad 	int n, s;
   2410  1.196       jym 
   2411  1.288  riastrad 	KASSERT(!cpu_intr_p());
   2412  1.288  riastrad 	KASSERT(!cpu_softintr_p());
   2413  1.176   thorpej 
   2414  1.177       jym 	if (ncpu < 2 || !mp_online) {
   2415  1.176   thorpej 		/*
   2416  1.176   thorpej 		 * We might be called early enough in the boot process
   2417  1.176   thorpej 		 * for the CPU data structures to not be fully initialized.
   2418  1.196       jym 		 * In this case, transfer the content of the local CPU's
   2419  1.196       jym 		 * cache back into global cache as only this CPU is currently
   2420  1.196       jym 		 * running.
   2421  1.176   thorpej 		 */
   2422  1.196       jym 		pool_cache_transfer(pc);
   2423  1.176   thorpej 	} else {
   2424  1.176   thorpej 		/*
   2425  1.196       jym 		 * Signal all CPUs that they must transfer their local
   2426  1.196       jym 		 * cache back to the global pool then wait for the xcall to
   2427  1.196       jym 		 * complete.
   2428  1.176   thorpej 		 */
   2429  1.261  christos 		where = xc_broadcast(0,
   2430  1.261  christos 		    __FPTRCAST(xcfunc_t, pool_cache_transfer), pc, NULL);
   2431  1.176   thorpej 		xc_wait(where);
   2432  1.176   thorpej 	}
   2433  1.196       jym 
   2434  1.271        ad 	/* Now dequeue and invalidate everything. */
   2435  1.271        ad 	pcg = pool_pcg_trunc(&pcg_normal_cache);
   2436  1.271        ad 	(void)pool_cache_invalidate_groups(pc, pcg);
   2437  1.271        ad 
   2438  1.271        ad 	pcg = pool_pcg_trunc(&pcg_large_cache);
   2439  1.271        ad 	(void)pool_cache_invalidate_groups(pc, pcg);
   2440  1.271        ad 
   2441  1.271        ad 	pcg = pool_pcg_trunc(&pc->pc_fullgroups);
   2442  1.271        ad 	n = pool_cache_invalidate_groups(pc, pcg);
   2443  1.271        ad 	s = splvm();
   2444  1.271        ad 	((pool_cache_cpu_t *)pc->pc_cpus[curcpu()->ci_index])->cc_nfull -= n;
   2445  1.271        ad 	splx(s);
   2446  1.271        ad 
   2447  1.271        ad 	pcg = pool_pcg_trunc(&pc->pc_partgroups);
   2448  1.271        ad 	n = pool_cache_invalidate_groups(pc, pcg);
   2449  1.271        ad 	s = splvm();
   2450  1.271        ad 	((pool_cache_cpu_t *)pc->pc_cpus[curcpu()->ci_index])->cc_npart -= n;
   2451  1.271        ad 	splx(s);
   2452  1.134        ad }
   2453  1.134        ad 
   2454  1.175       jym /*
   2455  1.175       jym  * pool_cache_invalidate_cpu:
   2456  1.175       jym  *
   2457  1.175       jym  *	Invalidate all CPU-bound cached objects in pool cache, the CPU being
   2458  1.175       jym  *	identified by its associated index.
   2459  1.175       jym  *	It is caller's responsibility to ensure that no operation is
   2460  1.175       jym  *	taking place on this pool cache while doing this invalidation.
   2461  1.175       jym  *	WARNING: as no inter-CPU locking is enforced, trying to invalidate
   2462  1.175       jym  *	pool cached objects from a CPU different from the one currently running
   2463  1.175       jym  *	may result in an undefined behaviour.
   2464  1.175       jym  */
   2465  1.175       jym static void
   2466  1.175       jym pool_cache_invalidate_cpu(pool_cache_t pc, u_int index)
   2467  1.175       jym {
   2468  1.175       jym 	pool_cache_cpu_t *cc;
   2469  1.175       jym 	pcg_t *pcg;
   2470  1.175       jym 
   2471  1.175       jym 	if ((cc = pc->pc_cpus[index]) == NULL)
   2472  1.175       jym 		return;
   2473  1.175       jym 
   2474  1.175       jym 	if ((pcg = cc->cc_current) != &pcg_dummy) {
   2475  1.175       jym 		pcg->pcg_next = NULL;
   2476  1.175       jym 		pool_cache_invalidate_groups(pc, pcg);
   2477  1.175       jym 	}
   2478  1.175       jym 	if ((pcg = cc->cc_previous) != &pcg_dummy) {
   2479  1.175       jym 		pcg->pcg_next = NULL;
   2480  1.175       jym 		pool_cache_invalidate_groups(pc, pcg);
   2481  1.175       jym 	}
   2482  1.175       jym 	if (cc != &pc->pc_cpu0)
   2483  1.175       jym 		pool_put(&cache_cpu_pool, cc);
   2484  1.175       jym 
   2485  1.175       jym }
   2486  1.175       jym 
   2487  1.134        ad void
   2488  1.134        ad pool_cache_set_drain_hook(pool_cache_t pc, void (*fn)(void *, int), void *arg)
   2489  1.134        ad {
   2490  1.134        ad 
   2491  1.134        ad 	pool_set_drain_hook(&pc->pc_pool, fn, arg);
   2492  1.134        ad }
   2493  1.134        ad 
   2494  1.134        ad void
   2495  1.134        ad pool_cache_setlowat(pool_cache_t pc, int n)
   2496  1.134        ad {
   2497  1.134        ad 
   2498  1.134        ad 	pool_setlowat(&pc->pc_pool, n);
   2499  1.134        ad }
   2500  1.134        ad 
   2501  1.134        ad void
   2502  1.134        ad pool_cache_sethiwat(pool_cache_t pc, int n)
   2503  1.134        ad {
   2504  1.134        ad 
   2505  1.134        ad 	pool_sethiwat(&pc->pc_pool, n);
   2506  1.134        ad }
   2507  1.134        ad 
   2508  1.134        ad void
   2509  1.134        ad pool_cache_sethardlimit(pool_cache_t pc, int n, const char *warnmess, int ratecap)
   2510  1.134        ad {
   2511  1.134        ad 
   2512  1.134        ad 	pool_sethardlimit(&pc->pc_pool, n, warnmess, ratecap);
   2513  1.134        ad }
   2514  1.134        ad 
   2515  1.267       chs void
   2516  1.267       chs pool_cache_prime(pool_cache_t pc, int n)
   2517  1.267       chs {
   2518  1.267       chs 
   2519  1.267       chs 	pool_prime(&pc->pc_pool, n);
   2520  1.267       chs }
   2521  1.267       chs 
   2522  1.277    simonb unsigned int
   2523  1.277    simonb pool_cache_nget(pool_cache_t pc)
   2524  1.277    simonb {
   2525  1.277    simonb 
   2526  1.277    simonb 	return pool_nget(&pc->pc_pool);
   2527  1.277    simonb }
   2528  1.277    simonb 
   2529  1.277    simonb unsigned int
   2530  1.277    simonb pool_cache_nput(pool_cache_t pc)
   2531  1.277    simonb {
   2532  1.277    simonb 
   2533  1.277    simonb 	return pool_nput(&pc->pc_pool);
   2534  1.277    simonb }
   2535  1.277    simonb 
   2536  1.271        ad /*
   2537  1.271        ad  * pool_pcg_get:
   2538  1.271        ad  *
   2539  1.271        ad  *	Get a cache group from the specified list.  Return true if
   2540  1.271        ad  *	contention was encountered.  Must be called at IPL_VM because
   2541  1.271        ad  *	of spin wait vs. kernel_lock.
   2542  1.271        ad  */
   2543  1.271        ad static int
   2544  1.271        ad pool_pcg_get(pcg_t *volatile *head, pcg_t **pcgp)
   2545  1.271        ad {
   2546  1.271        ad 	int count = SPINLOCK_BACKOFF_MIN;
   2547  1.271        ad 	pcg_t *o, *n;
   2548  1.271        ad 
   2549  1.271        ad 	for (o = atomic_load_relaxed(head);; o = n) {
   2550  1.271        ad 		if (__predict_false(o == &pcg_dummy)) {
   2551  1.271        ad 			/* Wait for concurrent get to complete. */
   2552  1.271        ad 			SPINLOCK_BACKOFF(count);
   2553  1.271        ad 			n = atomic_load_relaxed(head);
   2554  1.271        ad 			continue;
   2555  1.271        ad 		}
   2556  1.271        ad 		if (__predict_false(o == NULL)) {
   2557  1.271        ad 			break;
   2558  1.271        ad 		}
   2559  1.271        ad 		/* Lock out concurrent get/put. */
   2560  1.271        ad 		n = atomic_cas_ptr(head, o, __UNCONST(&pcg_dummy));
   2561  1.271        ad 		if (o == n) {
   2562  1.271        ad 			/* Fetch pointer to next item and then unlock. */
   2563  1.271        ad 			membar_datadep_consumer(); /* alpha */
   2564  1.271        ad 			n = atomic_load_relaxed(&o->pcg_next);
   2565  1.271        ad 			atomic_store_release(head, n);
   2566  1.271        ad 			break;
   2567  1.271        ad 		}
   2568  1.271        ad 	}
   2569  1.271        ad 	*pcgp = o;
   2570  1.271        ad 	return count != SPINLOCK_BACKOFF_MIN;
   2571  1.271        ad }
   2572  1.271        ad 
   2573  1.271        ad /*
   2574  1.271        ad  * pool_pcg_trunc:
   2575  1.271        ad  *
   2576  1.271        ad  *	Chop out entire list of pool cache groups.
   2577  1.271        ad  */
   2578  1.271        ad static pcg_t *
   2579  1.271        ad pool_pcg_trunc(pcg_t *volatile *head)
   2580  1.271        ad {
   2581  1.271        ad 	int count = SPINLOCK_BACKOFF_MIN, s;
   2582  1.271        ad 	pcg_t *o, *n;
   2583  1.271        ad 
   2584  1.271        ad 	s = splvm();
   2585  1.271        ad 	for (o = atomic_load_relaxed(head);; o = n) {
   2586  1.271        ad 		if (__predict_false(o == &pcg_dummy)) {
   2587  1.271        ad 			/* Wait for concurrent get to complete. */
   2588  1.271        ad 			SPINLOCK_BACKOFF(count);
   2589  1.271        ad 			n = atomic_load_relaxed(head);
   2590  1.271        ad 			continue;
   2591  1.271        ad 		}
   2592  1.271        ad 		n = atomic_cas_ptr(head, o, NULL);
   2593  1.271        ad 		if (o == n) {
   2594  1.271        ad 			splx(s);
   2595  1.271        ad 			membar_datadep_consumer(); /* alpha */
   2596  1.271        ad 			return o;
   2597  1.271        ad 		}
   2598  1.271        ad 	}
   2599  1.271        ad }
   2600  1.271        ad 
   2601  1.271        ad /*
   2602  1.271        ad  * pool_pcg_put:
   2603  1.271        ad  *
   2604  1.271        ad  *	Put a pool cache group to the specified list.  Return true if
   2605  1.271        ad  *	contention was encountered.  Must be called at IPL_VM because of
   2606  1.271        ad  *	spin wait vs. kernel_lock.
   2607  1.271        ad  */
   2608  1.271        ad static int
   2609  1.271        ad pool_pcg_put(pcg_t *volatile *head, pcg_t *pcg)
   2610  1.271        ad {
   2611  1.271        ad 	int count = SPINLOCK_BACKOFF_MIN;
   2612  1.271        ad 	pcg_t *o, *n;
   2613  1.271        ad 
   2614  1.271        ad 	for (o = atomic_load_relaxed(head);; o = n) {
   2615  1.271        ad 		if (__predict_false(o == &pcg_dummy)) {
   2616  1.271        ad 			/* Wait for concurrent get to complete. */
   2617  1.271        ad 			SPINLOCK_BACKOFF(count);
   2618  1.271        ad 			n = atomic_load_relaxed(head);
   2619  1.271        ad 			continue;
   2620  1.271        ad 		}
   2621  1.271        ad 		pcg->pcg_next = o;
   2622  1.282  riastrad 		membar_release();
   2623  1.271        ad 		n = atomic_cas_ptr(head, o, pcg);
   2624  1.271        ad 		if (o == n) {
   2625  1.271        ad 			return count != SPINLOCK_BACKOFF_MIN;
   2626  1.271        ad 		}
   2627  1.271        ad 	}
   2628  1.271        ad }
   2629  1.271        ad 
   2630  1.162        ad static bool __noinline
   2631  1.271        ad pool_cache_get_slow(pool_cache_t pc, pool_cache_cpu_t *cc, int s,
   2632  1.271        ad     void **objectp, paddr_t *pap, int flags)
   2633   1.43   thorpej {
   2634  1.134        ad 	pcg_t *pcg, *cur;
   2635   1.43   thorpej 	void *object;
   2636   1.58   thorpej 
   2637  1.168      yamt 	KASSERT(cc->cc_current->pcg_avail == 0);
   2638  1.168      yamt 	KASSERT(cc->cc_previous->pcg_avail == 0);
   2639  1.168      yamt 
   2640  1.134        ad 	cc->cc_misses++;
   2641   1.43   thorpej 
   2642  1.134        ad 	/*
   2643  1.271        ad 	 * If there's a full group, release our empty group back to the
   2644  1.271        ad 	 * cache.  Install the full group as cc_current and return.
   2645  1.134        ad 	 */
   2646  1.271        ad 	cc->cc_contended += pool_pcg_get(&pc->pc_fullgroups, &pcg);
   2647  1.271        ad 	if (__predict_true(pcg != NULL)) {
   2648  1.271        ad 		KASSERT(pcg->pcg_avail == pcg->pcg_size);
   2649  1.162        ad 		if (__predict_true((cur = cc->cc_current) != &pcg_dummy)) {
   2650  1.134        ad 			KASSERT(cur->pcg_avail == 0);
   2651  1.271        ad 			(void)pool_pcg_put(cc->cc_pcgcache, cur);
   2652   1.87   thorpej 		}
   2653  1.271        ad 		cc->cc_nfull--;
   2654  1.134        ad 		cc->cc_current = pcg;
   2655  1.162        ad 		return true;
   2656  1.134        ad 	}
   2657  1.134        ad 
   2658  1.134        ad 	/*
   2659  1.134        ad 	 * Nothing available locally or in cache.  Take the slow
   2660  1.134        ad 	 * path: fetch a new object from the pool and construct
   2661  1.134        ad 	 * it.
   2662  1.134        ad 	 */
   2663  1.271        ad 	cc->cc_pcmisses++;
   2664  1.162        ad 	splx(s);
   2665  1.134        ad 
   2666  1.134        ad 	object = pool_get(&pc->pc_pool, flags);
   2667  1.134        ad 	*objectp = object;
   2668  1.211  riastrad 	if (__predict_false(object == NULL)) {
   2669  1.265       chs 		KASSERT((flags & (PR_NOWAIT|PR_LIMITFAIL)) != 0);
   2670  1.162        ad 		return false;
   2671  1.211  riastrad 	}
   2672  1.125        ad 
   2673  1.162        ad 	if (__predict_false((*pc->pc_ctor)(pc->pc_arg, object, flags) != 0)) {
   2674  1.134        ad 		pool_put(&pc->pc_pool, object);
   2675  1.134        ad 		*objectp = NULL;
   2676  1.162        ad 		return false;
   2677   1.43   thorpej 	}
   2678   1.43   thorpej 
   2679  1.238      maxv 	KASSERT((((vaddr_t)object) & (pc->pc_pool.pr_align - 1)) == 0);
   2680   1.43   thorpej 
   2681  1.134        ad 	if (pap != NULL) {
   2682  1.134        ad #ifdef POOL_VTOPHYS
   2683  1.134        ad 		*pap = POOL_VTOPHYS(object);
   2684  1.134        ad #else
   2685  1.134        ad 		*pap = POOL_PADDR_INVALID;
   2686  1.134        ad #endif
   2687  1.102       chs 	}
   2688   1.43   thorpej 
   2689  1.125        ad 	FREECHECK_OUT(&pc->pc_freecheck, object);
   2690  1.162        ad 	return false;
   2691   1.43   thorpej }
   2692   1.43   thorpej 
   2693   1.43   thorpej /*
   2694  1.134        ad  * pool_cache_get{,_paddr}:
   2695   1.43   thorpej  *
   2696  1.134        ad  *	Get an object from a pool cache (optionally returning
   2697  1.134        ad  *	the physical address of the object).
   2698   1.43   thorpej  */
   2699  1.134        ad void *
   2700  1.134        ad pool_cache_get_paddr(pool_cache_t pc, int flags, paddr_t *pap)
   2701   1.43   thorpej {
   2702  1.134        ad 	pool_cache_cpu_t *cc;
   2703  1.134        ad 	pcg_t *pcg;
   2704  1.134        ad 	void *object;
   2705   1.60   thorpej 	int s;
   2706   1.43   thorpej 
   2707  1.215  christos 	KASSERT(!(flags & PR_NOWAIT) != !(flags & PR_WAITOK));
   2708  1.184     rmind 	KASSERTMSG((!cpu_intr_p() && !cpu_softintr_p()) ||
   2709  1.185     rmind 	    (pc->pc_pool.pr_ipl != IPL_NONE || cold || panicstr != NULL),
   2710  1.213  christos 	    "%s: [%s] is IPL_NONE, but called from interrupt context",
   2711  1.213  christos 	    __func__, pc->pc_pool.pr_wchan);
   2712  1.184     rmind 
   2713  1.155        ad 	if (flags & PR_WAITOK) {
   2714  1.154      yamt 		ASSERT_SLEEPABLE();
   2715  1.155        ad 	}
   2716  1.125        ad 
   2717  1.270      maxv 	if (flags & PR_NOWAIT) {
   2718  1.270      maxv 		if (fault_inject())
   2719  1.270      maxv 			return NULL;
   2720  1.270      maxv 	}
   2721  1.270      maxv 
   2722  1.162        ad 	/* Lock out interrupts and disable preemption. */
   2723  1.162        ad 	s = splvm();
   2724  1.165      yamt 	while (/* CONSTCOND */ true) {
   2725  1.134        ad 		/* Try and allocate an object from the current group. */
   2726  1.162        ad 		cc = pc->pc_cpus[curcpu()->ci_index];
   2727  1.134        ad 	 	pcg = cc->cc_current;
   2728  1.162        ad 		if (__predict_true(pcg->pcg_avail > 0)) {
   2729  1.134        ad 			object = pcg->pcg_objects[--pcg->pcg_avail].pcgo_va;
   2730  1.162        ad 			if (__predict_false(pap != NULL))
   2731  1.134        ad 				*pap = pcg->pcg_objects[pcg->pcg_avail].pcgo_pa;
   2732  1.148      yamt #if defined(DIAGNOSTIC)
   2733  1.134        ad 			pcg->pcg_objects[pcg->pcg_avail].pcgo_va = NULL;
   2734  1.163        ad 			KASSERT(pcg->pcg_avail < pcg->pcg_size);
   2735  1.134        ad 			KASSERT(object != NULL);
   2736  1.163        ad #endif
   2737  1.134        ad 			cc->cc_hits++;
   2738  1.162        ad 			splx(s);
   2739  1.134        ad 			FREECHECK_OUT(&pc->pc_freecheck, object);
   2740  1.204      maxv 			pool_redzone_fill(&pc->pc_pool, object);
   2741  1.262      maxv 			pool_cache_get_kmsan(pc, object);
   2742  1.134        ad 			return object;
   2743   1.43   thorpej 		}
   2744   1.43   thorpej 
   2745   1.43   thorpej 		/*
   2746  1.134        ad 		 * That failed.  If the previous group isn't empty, swap
   2747  1.134        ad 		 * it with the current group and allocate from there.
   2748   1.43   thorpej 		 */
   2749  1.134        ad 		pcg = cc->cc_previous;
   2750  1.162        ad 		if (__predict_true(pcg->pcg_avail > 0)) {
   2751  1.134        ad 			cc->cc_previous = cc->cc_current;
   2752  1.134        ad 			cc->cc_current = pcg;
   2753  1.134        ad 			continue;
   2754   1.43   thorpej 		}
   2755   1.43   thorpej 
   2756  1.134        ad 		/*
   2757  1.134        ad 		 * Can't allocate from either group: try the slow path.
   2758  1.134        ad 		 * If get_slow() allocated an object for us, or if
   2759  1.162        ad 		 * no more objects are available, it will return false.
   2760  1.134        ad 		 * Otherwise, we need to retry.
   2761  1.134        ad 		 */
   2762  1.271        ad 		if (!pool_cache_get_slow(pc, cc, s, &object, pap, flags)) {
   2763  1.269      maxv 			if (object != NULL) {
   2764  1.269      maxv 				kmsan_orig(object, pc->pc_pool.pr_size,
   2765  1.269      maxv 				    KMSAN_TYPE_POOL, __RET_ADDR);
   2766  1.269      maxv 			}
   2767  1.165      yamt 			break;
   2768  1.269      maxv 		}
   2769  1.165      yamt 	}
   2770   1.43   thorpej 
   2771  1.211  riastrad 	/*
   2772  1.211  riastrad 	 * We would like to KASSERT(object || (flags & PR_NOWAIT)), but
   2773  1.211  riastrad 	 * pool_cache_get can fail even in the PR_WAITOK case, if the
   2774  1.211  riastrad 	 * constructor fails.
   2775  1.211  riastrad 	 */
   2776  1.134        ad 	return object;
   2777   1.51   thorpej }
   2778   1.51   thorpej 
   2779  1.162        ad static bool __noinline
   2780  1.271        ad pool_cache_put_slow(pool_cache_t pc, pool_cache_cpu_t *cc, int s, void *object)
   2781   1.51   thorpej {
   2782  1.163        ad 	pcg_t *pcg, *cur;
   2783   1.51   thorpej 
   2784  1.168      yamt 	KASSERT(cc->cc_current->pcg_avail == cc->cc_current->pcg_size);
   2785  1.168      yamt 	KASSERT(cc->cc_previous->pcg_avail == cc->cc_previous->pcg_size);
   2786  1.168      yamt 
   2787  1.134        ad 	cc->cc_misses++;
   2788   1.43   thorpej 
   2789  1.171        ad 	/*
   2790  1.271        ad 	 * Try to get an empty group from the cache.  If there are no empty
   2791  1.271        ad 	 * groups in the cache then allocate one.
   2792  1.171        ad 	 */
   2793  1.271        ad 	(void)pool_pcg_get(cc->cc_pcgcache, &pcg);
   2794  1.271        ad 	if (__predict_false(pcg == NULL)) {
   2795  1.171        ad 		if (__predict_true(!pool_cache_disable)) {
   2796  1.171        ad 			pcg = pool_get(pc->pc_pcgpool, PR_NOWAIT);
   2797  1.171        ad 		}
   2798  1.171        ad 		if (__predict_true(pcg != NULL)) {
   2799  1.171        ad 			pcg->pcg_avail = 0;
   2800  1.171        ad 			pcg->pcg_size = pc->pc_pcgsize;
   2801  1.171        ad 		}
   2802  1.171        ad 	}
   2803  1.171        ad 
   2804  1.162        ad 	/*
   2805  1.271        ad 	 * If there's a empty group, release our full group back to the
   2806  1.271        ad 	 * cache.  Install the empty group to the local CPU and return.
   2807  1.162        ad 	 */
   2808  1.163        ad 	if (pcg != NULL) {
   2809  1.134        ad 		KASSERT(pcg->pcg_avail == 0);
   2810  1.162        ad 		if (__predict_false(cc->cc_previous == &pcg_dummy)) {
   2811  1.146        ad 			cc->cc_previous = pcg;
   2812  1.146        ad 		} else {
   2813  1.162        ad 			cur = cc->cc_current;
   2814  1.162        ad 			if (__predict_true(cur != &pcg_dummy)) {
   2815  1.163        ad 				KASSERT(cur->pcg_avail == cur->pcg_size);
   2816  1.271        ad 				cc->cc_contended +=
   2817  1.271        ad 				    pool_pcg_put(&pc->pc_fullgroups, cur);
   2818  1.271        ad 				cc->cc_nfull++;
   2819  1.146        ad 			}
   2820  1.146        ad 			cc->cc_current = pcg;
   2821  1.146        ad 		}
   2822  1.162        ad 		return true;
   2823  1.102       chs 	}
   2824  1.105  christos 
   2825  1.134        ad 	/*
   2826  1.162        ad 	 * Nothing available locally or in cache, and we didn't
   2827  1.162        ad 	 * allocate an empty group.  Take the slow path and destroy
   2828  1.162        ad 	 * the object here and now.
   2829  1.134        ad 	 */
   2830  1.271        ad 	cc->cc_pcmisses++;
   2831  1.162        ad 	splx(s);
   2832  1.162        ad 	pool_cache_destruct_object(pc, object);
   2833  1.105  christos 
   2834  1.162        ad 	return false;
   2835  1.236      maxv }
   2836  1.102       chs 
   2837   1.43   thorpej /*
   2838  1.134        ad  * pool_cache_put{,_paddr}:
   2839   1.43   thorpej  *
   2840  1.134        ad  *	Put an object back to the pool cache (optionally caching the
   2841  1.134        ad  *	physical address of the object).
   2842   1.43   thorpej  */
   2843  1.101   thorpej void
   2844  1.134        ad pool_cache_put_paddr(pool_cache_t pc, void *object, paddr_t pa)
   2845   1.43   thorpej {
   2846  1.134        ad 	pool_cache_cpu_t *cc;
   2847  1.134        ad 	pcg_t *pcg;
   2848  1.134        ad 	int s;
   2849  1.101   thorpej 
   2850  1.172      yamt 	KASSERT(object != NULL);
   2851  1.262      maxv 	pool_cache_put_kmsan(pc, object);
   2852  1.229      maxv 	pool_cache_redzone_check(pc, object);
   2853  1.134        ad 	FREECHECK_IN(&pc->pc_freecheck, object);
   2854  1.101   thorpej 
   2855  1.253      maxv 	if (pc->pc_pool.pr_roflags & PR_PHINPAGE) {
   2856  1.253      maxv 		pc_phinpage_check(pc, object);
   2857  1.253      maxv 	}
   2858  1.253      maxv 
   2859  1.268      maxv 	if (pool_cache_put_nocache(pc, object)) {
   2860  1.249      maxv 		return;
   2861  1.249      maxv 	}
   2862  1.249      maxv 
   2863  1.162        ad 	/* Lock out interrupts and disable preemption. */
   2864  1.162        ad 	s = splvm();
   2865  1.165      yamt 	while (/* CONSTCOND */ true) {
   2866  1.134        ad 		/* If the current group isn't full, release it there. */
   2867  1.162        ad 		cc = pc->pc_cpus[curcpu()->ci_index];
   2868  1.134        ad 	 	pcg = cc->cc_current;
   2869  1.162        ad 		if (__predict_true(pcg->pcg_avail < pcg->pcg_size)) {
   2870  1.134        ad 			pcg->pcg_objects[pcg->pcg_avail].pcgo_va = object;
   2871  1.134        ad 			pcg->pcg_objects[pcg->pcg_avail].pcgo_pa = pa;
   2872  1.134        ad 			pcg->pcg_avail++;
   2873  1.134        ad 			cc->cc_hits++;
   2874  1.162        ad 			splx(s);
   2875  1.134        ad 			return;
   2876  1.134        ad 		}
   2877   1.43   thorpej 
   2878  1.134        ad 		/*
   2879  1.162        ad 		 * That failed.  If the previous group isn't full, swap
   2880  1.134        ad 		 * it with the current group and try again.
   2881  1.134        ad 		 */
   2882  1.134        ad 		pcg = cc->cc_previous;
   2883  1.162        ad 		if (__predict_true(pcg->pcg_avail < pcg->pcg_size)) {
   2884  1.134        ad 			cc->cc_previous = cc->cc_current;
   2885  1.134        ad 			cc->cc_current = pcg;
   2886  1.134        ad 			continue;
   2887  1.134        ad 		}
   2888   1.43   thorpej 
   2889  1.134        ad 		/*
   2890  1.236      maxv 		 * Can't free to either group: try the slow path.
   2891  1.134        ad 		 * If put_slow() releases the object for us, it
   2892  1.162        ad 		 * will return false.  Otherwise we need to retry.
   2893  1.134        ad 		 */
   2894  1.271        ad 		if (!pool_cache_put_slow(pc, cc, s, object))
   2895  1.165      yamt 			break;
   2896  1.165      yamt 	}
   2897   1.43   thorpej }
   2898   1.43   thorpej 
   2899   1.43   thorpej /*
   2900  1.196       jym  * pool_cache_transfer:
   2901   1.43   thorpej  *
   2902  1.134        ad  *	Transfer objects from the per-CPU cache to the global cache.
   2903  1.134        ad  *	Run within a cross-call thread.
   2904   1.43   thorpej  */
   2905   1.43   thorpej static void
   2906  1.196       jym pool_cache_transfer(pool_cache_t pc)
   2907   1.43   thorpej {
   2908  1.134        ad 	pool_cache_cpu_t *cc;
   2909  1.271        ad 	pcg_t *prev, *cur;
   2910  1.162        ad 	int s;
   2911  1.134        ad 
   2912  1.162        ad 	s = splvm();
   2913  1.162        ad 	cc = pc->pc_cpus[curcpu()->ci_index];
   2914  1.134        ad 	cur = cc->cc_current;
   2915  1.169      yamt 	cc->cc_current = __UNCONST(&pcg_dummy);
   2916  1.134        ad 	prev = cc->cc_previous;
   2917  1.169      yamt 	cc->cc_previous = __UNCONST(&pcg_dummy);
   2918  1.162        ad 	if (cur != &pcg_dummy) {
   2919  1.142        ad 		if (cur->pcg_avail == cur->pcg_size) {
   2920  1.271        ad 			(void)pool_pcg_put(&pc->pc_fullgroups, cur);
   2921  1.271        ad 			cc->cc_nfull++;
   2922  1.134        ad 		} else if (cur->pcg_avail == 0) {
   2923  1.271        ad 			(void)pool_pcg_put(pc->pc_pcgcache, cur);
   2924  1.134        ad 		} else {
   2925  1.271        ad 			(void)pool_pcg_put(&pc->pc_partgroups, cur);
   2926  1.271        ad 			cc->cc_npart++;
   2927  1.134        ad 		}
   2928  1.134        ad 	}
   2929  1.162        ad 	if (prev != &pcg_dummy) {
   2930  1.142        ad 		if (prev->pcg_avail == prev->pcg_size) {
   2931  1.271        ad 			(void)pool_pcg_put(&pc->pc_fullgroups, prev);
   2932  1.271        ad 			cc->cc_nfull++;
   2933  1.134        ad 		} else if (prev->pcg_avail == 0) {
   2934  1.271        ad 			(void)pool_pcg_put(pc->pc_pcgcache, prev);
   2935  1.134        ad 		} else {
   2936  1.271        ad 			(void)pool_pcg_put(&pc->pc_partgroups, prev);
   2937  1.271        ad 			cc->cc_npart++;
   2938  1.134        ad 		}
   2939  1.134        ad 	}
   2940  1.134        ad 	splx(s);
   2941    1.3        pk }
   2942   1.66   thorpej 
   2943  1.208       chs static int
   2944  1.208       chs pool_bigidx(size_t size)
   2945  1.208       chs {
   2946  1.208       chs 	int i;
   2947  1.208       chs 
   2948  1.208       chs 	for (i = 0; i < __arraycount(pool_allocator_big); i++) {
   2949  1.208       chs 		if (1 << (i + POOL_ALLOCATOR_BIG_BASE) >= size)
   2950  1.208       chs 			return i;
   2951  1.208       chs 	}
   2952  1.208       chs 	panic("pool item size %zu too large, use a custom allocator", size);
   2953  1.208       chs }
   2954  1.208       chs 
   2955  1.117      yamt static void *
   2956  1.117      yamt pool_allocator_alloc(struct pool *pp, int flags)
   2957   1.66   thorpej {
   2958  1.117      yamt 	struct pool_allocator *pa = pp->pr_alloc;
   2959   1.66   thorpej 	void *res;
   2960   1.66   thorpej 
   2961  1.117      yamt 	res = (*pa->pa_alloc)(pp, flags);
   2962  1.117      yamt 	if (res == NULL && (flags & PR_WAITOK) == 0) {
   2963   1.66   thorpej 		/*
   2964  1.117      yamt 		 * We only run the drain hook here if PR_NOWAIT.
   2965  1.117      yamt 		 * In other cases, the hook will be run in
   2966  1.117      yamt 		 * pool_reclaim().
   2967   1.66   thorpej 		 */
   2968  1.117      yamt 		if (pp->pr_drain_hook != NULL) {
   2969  1.117      yamt 			(*pp->pr_drain_hook)(pp->pr_drain_hook_arg, flags);
   2970  1.117      yamt 			res = (*pa->pa_alloc)(pp, flags);
   2971   1.66   thorpej 		}
   2972  1.117      yamt 	}
   2973  1.117      yamt 	return res;
   2974   1.66   thorpej }
   2975   1.66   thorpej 
   2976  1.117      yamt static void
   2977   1.66   thorpej pool_allocator_free(struct pool *pp, void *v)
   2978   1.66   thorpej {
   2979   1.66   thorpej 	struct pool_allocator *pa = pp->pr_alloc;
   2980   1.66   thorpej 
   2981  1.229      maxv 	if (pp->pr_redzone) {
   2982  1.279   thorpej 		KASSERT(!pp_has_pser(pp));
   2983  1.248      maxv 		kasan_mark(v, pa->pa_pagesz, pa->pa_pagesz, 0);
   2984  1.279   thorpej 	} else if (__predict_false(pp_has_pser(pp))) {
   2985  1.279   thorpej 		/*
   2986  1.279   thorpej 		 * Perform a passive serialization barrier before freeing
   2987  1.279   thorpej 		 * the pool page back to the system.
   2988  1.279   thorpej 		 */
   2989  1.279   thorpej 		pool_barrier();
   2990  1.229      maxv 	}
   2991   1.66   thorpej 	(*pa->pa_free)(pp, v);
   2992   1.66   thorpej }
   2993   1.66   thorpej 
   2994   1.66   thorpej void *
   2995  1.124      yamt pool_page_alloc(struct pool *pp, int flags)
   2996   1.66   thorpej {
   2997  1.192     rmind 	const vm_flag_t vflags = (flags & PR_WAITOK) ? VM_SLEEP: VM_NOSLEEP;
   2998  1.191      para 	vmem_addr_t va;
   2999  1.192     rmind 	int ret;
   3000  1.191      para 
   3001  1.192     rmind 	ret = uvm_km_kmem_alloc(kmem_va_arena, pp->pr_alloc->pa_pagesz,
   3002  1.192     rmind 	    vflags | VM_INSTANTFIT, &va);
   3003   1.66   thorpej 
   3004  1.192     rmind 	return ret ? NULL : (void *)va;
   3005   1.66   thorpej }
   3006   1.66   thorpej 
   3007   1.66   thorpej void
   3008  1.124      yamt pool_page_free(struct pool *pp, void *v)
   3009   1.66   thorpej {
   3010   1.66   thorpej 
   3011  1.191      para 	uvm_km_kmem_free(kmem_va_arena, (vaddr_t)v, pp->pr_alloc->pa_pagesz);
   3012   1.98      yamt }
   3013   1.98      yamt 
   3014   1.98      yamt static void *
   3015  1.124      yamt pool_page_alloc_meta(struct pool *pp, int flags)
   3016   1.98      yamt {
   3017  1.192     rmind 	const vm_flag_t vflags = (flags & PR_WAITOK) ? VM_SLEEP: VM_NOSLEEP;
   3018  1.192     rmind 	vmem_addr_t va;
   3019  1.192     rmind 	int ret;
   3020  1.191      para 
   3021  1.192     rmind 	ret = vmem_alloc(kmem_meta_arena, pp->pr_alloc->pa_pagesz,
   3022  1.192     rmind 	    vflags | VM_INSTANTFIT, &va);
   3023   1.98      yamt 
   3024  1.192     rmind 	return ret ? NULL : (void *)va;
   3025   1.98      yamt }
   3026   1.98      yamt 
   3027   1.98      yamt static void
   3028  1.124      yamt pool_page_free_meta(struct pool *pp, void *v)
   3029   1.98      yamt {
   3030   1.98      yamt 
   3031  1.192     rmind 	vmem_free(kmem_meta_arena, (vmem_addr_t)v, pp->pr_alloc->pa_pagesz);
   3032   1.66   thorpej }
   3033   1.66   thorpej 
   3034  1.262      maxv #ifdef KMSAN
   3035  1.262      maxv static inline void
   3036  1.262      maxv pool_get_kmsan(struct pool *pp, void *p)
   3037  1.262      maxv {
   3038  1.262      maxv 	kmsan_orig(p, pp->pr_size, KMSAN_TYPE_POOL, __RET_ADDR);
   3039  1.262      maxv 	kmsan_mark(p, pp->pr_size, KMSAN_STATE_UNINIT);
   3040  1.262      maxv }
   3041  1.262      maxv 
   3042  1.262      maxv static inline void
   3043  1.262      maxv pool_put_kmsan(struct pool *pp, void *p)
   3044  1.262      maxv {
   3045  1.262      maxv 	kmsan_mark(p, pp->pr_size, KMSAN_STATE_INITED);
   3046  1.262      maxv }
   3047  1.262      maxv 
   3048  1.262      maxv static inline void
   3049  1.262      maxv pool_cache_get_kmsan(pool_cache_t pc, void *p)
   3050  1.262      maxv {
   3051  1.262      maxv 	if (__predict_false(pc_has_ctor(pc))) {
   3052  1.262      maxv 		return;
   3053  1.262      maxv 	}
   3054  1.262      maxv 	pool_get_kmsan(&pc->pc_pool, p);
   3055  1.262      maxv }
   3056  1.262      maxv 
   3057  1.262      maxv static inline void
   3058  1.262      maxv pool_cache_put_kmsan(pool_cache_t pc, void *p)
   3059  1.262      maxv {
   3060  1.262      maxv 	pool_put_kmsan(&pc->pc_pool, p);
   3061  1.262      maxv }
   3062  1.262      maxv #endif
   3063  1.262      maxv 
   3064  1.249      maxv #ifdef POOL_QUARANTINE
   3065  1.249      maxv static void
   3066  1.249      maxv pool_quarantine_init(struct pool *pp)
   3067  1.249      maxv {
   3068  1.249      maxv 	pp->pr_quar.rotor = 0;
   3069  1.249      maxv 	memset(&pp->pr_quar, 0, sizeof(pp->pr_quar));
   3070  1.249      maxv }
   3071  1.249      maxv 
   3072  1.249      maxv static void
   3073  1.249      maxv pool_quarantine_flush(struct pool *pp)
   3074  1.249      maxv {
   3075  1.249      maxv 	pool_quar_t *quar = &pp->pr_quar;
   3076  1.249      maxv 	struct pool_pagelist pq;
   3077  1.249      maxv 	size_t i;
   3078  1.249      maxv 
   3079  1.249      maxv 	LIST_INIT(&pq);
   3080  1.249      maxv 
   3081  1.249      maxv 	mutex_enter(&pp->pr_lock);
   3082  1.249      maxv 	for (i = 0; i < POOL_QUARANTINE_DEPTH; i++) {
   3083  1.249      maxv 		if (quar->list[i] == 0)
   3084  1.249      maxv 			continue;
   3085  1.249      maxv 		pool_do_put(pp, (void *)quar->list[i], &pq);
   3086  1.249      maxv 	}
   3087  1.249      maxv 	mutex_exit(&pp->pr_lock);
   3088  1.249      maxv 
   3089  1.249      maxv 	pr_pagelist_free(pp, &pq);
   3090  1.249      maxv }
   3091  1.249      maxv 
   3092  1.249      maxv static bool
   3093  1.249      maxv pool_put_quarantine(struct pool *pp, void *v, struct pool_pagelist *pq)
   3094  1.249      maxv {
   3095  1.249      maxv 	pool_quar_t *quar = &pp->pr_quar;
   3096  1.249      maxv 	uintptr_t old;
   3097  1.249      maxv 
   3098  1.249      maxv 	if (pp->pr_roflags & PR_NOTOUCH) {
   3099  1.249      maxv 		return false;
   3100  1.249      maxv 	}
   3101  1.249      maxv 
   3102  1.249      maxv 	pool_redzone_check(pp, v);
   3103  1.249      maxv 
   3104  1.249      maxv 	old = quar->list[quar->rotor];
   3105  1.249      maxv 	quar->list[quar->rotor] = (uintptr_t)v;
   3106  1.249      maxv 	quar->rotor = (quar->rotor + 1) % POOL_QUARANTINE_DEPTH;
   3107  1.249      maxv 	if (old != 0) {
   3108  1.249      maxv 		pool_do_put(pp, (void *)old, pq);
   3109  1.249      maxv 	}
   3110  1.249      maxv 
   3111  1.249      maxv 	return true;
   3112  1.249      maxv }
   3113  1.268      maxv #endif
   3114  1.249      maxv 
   3115  1.268      maxv #ifdef POOL_NOCACHE
   3116  1.249      maxv static bool
   3117  1.268      maxv pool_cache_put_nocache(pool_cache_t pc, void *p)
   3118  1.249      maxv {
   3119  1.249      maxv 	pool_cache_destruct_object(pc, p);
   3120  1.249      maxv 	return true;
   3121  1.249      maxv }
   3122  1.249      maxv #endif
   3123  1.249      maxv 
   3124  1.204      maxv #ifdef POOL_REDZONE
   3125  1.204      maxv #if defined(_LP64)
   3126  1.204      maxv # define PRIME 0x9e37fffffffc0000UL
   3127  1.204      maxv #else /* defined(_LP64) */
   3128  1.204      maxv # define PRIME 0x9e3779b1
   3129  1.204      maxv #endif /* defined(_LP64) */
   3130  1.204      maxv #define STATIC_BYTE	0xFE
   3131  1.204      maxv CTASSERT(POOL_REDZONE_SIZE > 1);
   3132  1.204      maxv 
   3133  1.224      maxv #ifndef KASAN
   3134  1.204      maxv static inline uint8_t
   3135  1.204      maxv pool_pattern_generate(const void *p)
   3136  1.204      maxv {
   3137  1.204      maxv 	return (uint8_t)(((uintptr_t)p) * PRIME
   3138  1.204      maxv 	   >> ((sizeof(uintptr_t) - sizeof(uint8_t))) * CHAR_BIT);
   3139  1.204      maxv }
   3140  1.224      maxv #endif
   3141  1.204      maxv 
   3142  1.204      maxv static void
   3143  1.204      maxv pool_redzone_init(struct pool *pp, size_t requested_size)
   3144  1.204      maxv {
   3145  1.227      maxv 	size_t redzsz;
   3146  1.204      maxv 	size_t nsz;
   3147  1.204      maxv 
   3148  1.227      maxv #ifdef KASAN
   3149  1.227      maxv 	redzsz = requested_size;
   3150  1.227      maxv 	kasan_add_redzone(&redzsz);
   3151  1.227      maxv 	redzsz -= requested_size;
   3152  1.227      maxv #else
   3153  1.227      maxv 	redzsz = POOL_REDZONE_SIZE;
   3154  1.227      maxv #endif
   3155  1.227      maxv 
   3156  1.204      maxv 	if (pp->pr_roflags & PR_NOTOUCH) {
   3157  1.204      maxv 		pp->pr_redzone = false;
   3158  1.204      maxv 		return;
   3159  1.204      maxv 	}
   3160  1.204      maxv 
   3161  1.204      maxv 	/*
   3162  1.204      maxv 	 * We may have extended the requested size earlier; check if
   3163  1.204      maxv 	 * there's naturally space in the padding for a red zone.
   3164  1.204      maxv 	 */
   3165  1.227      maxv 	if (pp->pr_size - requested_size >= redzsz) {
   3166  1.229      maxv 		pp->pr_reqsize_with_redzone = requested_size + redzsz;
   3167  1.204      maxv 		pp->pr_redzone = true;
   3168  1.204      maxv 		return;
   3169  1.204      maxv 	}
   3170  1.204      maxv 
   3171  1.204      maxv 	/*
   3172  1.204      maxv 	 * No space in the natural padding; check if we can extend a
   3173  1.204      maxv 	 * bit the size of the pool.
   3174  1.276       mrg 	 *
   3175  1.276       mrg 	 * Avoid using redzone for allocations half of a page or larger.
   3176  1.276       mrg 	 * For pagesize items, we'd waste a whole new page (could be
   3177  1.276       mrg 	 * unmapped?), and for half pagesize items, approximately half
   3178  1.276       mrg 	 * the space is lost (eg, 4K pages, you get one 2K allocation.)
   3179  1.204      maxv 	 */
   3180  1.227      maxv 	nsz = roundup(pp->pr_size + redzsz, pp->pr_align);
   3181  1.276       mrg 	if (nsz <= (pp->pr_alloc->pa_pagesz / 2)) {
   3182  1.204      maxv 		/* Ok, we can */
   3183  1.204      maxv 		pp->pr_size = nsz;
   3184  1.229      maxv 		pp->pr_reqsize_with_redzone = requested_size + redzsz;
   3185  1.204      maxv 		pp->pr_redzone = true;
   3186  1.204      maxv 	} else {
   3187  1.204      maxv 		/* No space for a red zone... snif :'( */
   3188  1.204      maxv 		pp->pr_redzone = false;
   3189  1.274  riastrad 		aprint_debug("pool redzone disabled for '%s'\n", pp->pr_wchan);
   3190  1.204      maxv 	}
   3191  1.204      maxv }
   3192  1.204      maxv 
   3193  1.204      maxv static void
   3194  1.204      maxv pool_redzone_fill(struct pool *pp, void *p)
   3195  1.204      maxv {
   3196  1.224      maxv 	if (!pp->pr_redzone)
   3197  1.224      maxv 		return;
   3198  1.279   thorpej 	KASSERT(!pp_has_pser(pp));
   3199  1.224      maxv #ifdef KASAN
   3200  1.248      maxv 	kasan_mark(p, pp->pr_reqsize, pp->pr_reqsize_with_redzone,
   3201  1.248      maxv 	    KASAN_POOL_REDZONE);
   3202  1.224      maxv #else
   3203  1.204      maxv 	uint8_t *cp, pat;
   3204  1.204      maxv 	const uint8_t *ep;
   3205  1.204      maxv 
   3206  1.204      maxv 	cp = (uint8_t *)p + pp->pr_reqsize;
   3207  1.204      maxv 	ep = cp + POOL_REDZONE_SIZE;
   3208  1.204      maxv 
   3209  1.204      maxv 	/*
   3210  1.204      maxv 	 * We really don't want the first byte of the red zone to be '\0';
   3211  1.204      maxv 	 * an off-by-one in a string may not be properly detected.
   3212  1.204      maxv 	 */
   3213  1.204      maxv 	pat = pool_pattern_generate(cp);
   3214  1.204      maxv 	*cp = (pat == '\0') ? STATIC_BYTE: pat;
   3215  1.204      maxv 	cp++;
   3216  1.204      maxv 
   3217  1.204      maxv 	while (cp < ep) {
   3218  1.204      maxv 		*cp = pool_pattern_generate(cp);
   3219  1.204      maxv 		cp++;
   3220  1.204      maxv 	}
   3221  1.224      maxv #endif
   3222  1.204      maxv }
   3223  1.204      maxv 
   3224  1.204      maxv static void
   3225  1.204      maxv pool_redzone_check(struct pool *pp, void *p)
   3226  1.204      maxv {
   3227  1.224      maxv 	if (!pp->pr_redzone)
   3228  1.224      maxv 		return;
   3229  1.279   thorpej 	KASSERT(!pp_has_pser(pp));
   3230  1.224      maxv #ifdef KASAN
   3231  1.248      maxv 	kasan_mark(p, 0, pp->pr_reqsize_with_redzone, KASAN_POOL_FREED);
   3232  1.224      maxv #else
   3233  1.204      maxv 	uint8_t *cp, pat, expected;
   3234  1.204      maxv 	const uint8_t *ep;
   3235  1.204      maxv 
   3236  1.204      maxv 	cp = (uint8_t *)p + pp->pr_reqsize;
   3237  1.204      maxv 	ep = cp + POOL_REDZONE_SIZE;
   3238  1.204      maxv 
   3239  1.204      maxv 	pat = pool_pattern_generate(cp);
   3240  1.204      maxv 	expected = (pat == '\0') ? STATIC_BYTE: pat;
   3241  1.264      maxv 	if (__predict_false(*cp != expected)) {
   3242  1.264      maxv 		panic("%s: [%s] 0x%02x != 0x%02x", __func__,
   3243  1.264      maxv 		    pp->pr_wchan, *cp, expected);
   3244  1.204      maxv 	}
   3245  1.204      maxv 	cp++;
   3246  1.204      maxv 
   3247  1.204      maxv 	while (cp < ep) {
   3248  1.204      maxv 		expected = pool_pattern_generate(cp);
   3249  1.225      maxv 		if (__predict_false(*cp != expected)) {
   3250  1.264      maxv 			panic("%s: [%s] 0x%02x != 0x%02x", __func__,
   3251  1.264      maxv 			    pp->pr_wchan, *cp, expected);
   3252  1.204      maxv 		}
   3253  1.204      maxv 		cp++;
   3254  1.204      maxv 	}
   3255  1.224      maxv #endif
   3256  1.204      maxv }
   3257  1.204      maxv 
   3258  1.229      maxv static void
   3259  1.229      maxv pool_cache_redzone_check(pool_cache_t pc, void *p)
   3260  1.229      maxv {
   3261  1.229      maxv #ifdef KASAN
   3262  1.279   thorpej 	/*
   3263  1.279   thorpej 	 * If there is a ctor/dtor, or if the cache objects use
   3264  1.279   thorpej 	 * passive serialization, leave the data as valid.
   3265  1.279   thorpej 	 */
   3266  1.279   thorpej 	if (__predict_false(pc_has_ctor(pc) || pc_has_dtor(pc) ||
   3267  1.279   thorpej 	    pc_has_pser(pc))) {
   3268  1.229      maxv 		return;
   3269  1.229      maxv 	}
   3270  1.229      maxv #endif
   3271  1.229      maxv 	pool_redzone_check(&pc->pc_pool, p);
   3272  1.229      maxv }
   3273  1.229      maxv 
   3274  1.204      maxv #endif /* POOL_REDZONE */
   3275  1.204      maxv 
   3276  1.141      yamt #if defined(DDB)
   3277  1.141      yamt static bool
   3278  1.141      yamt pool_in_page(struct pool *pp, struct pool_item_header *ph, uintptr_t addr)
   3279  1.141      yamt {
   3280  1.141      yamt 
   3281  1.141      yamt 	return (uintptr_t)ph->ph_page <= addr &&
   3282  1.141      yamt 	    addr < (uintptr_t)ph->ph_page + pp->pr_alloc->pa_pagesz;
   3283  1.141      yamt }
   3284  1.141      yamt 
   3285  1.143      yamt static bool
   3286  1.143      yamt pool_in_item(struct pool *pp, void *item, uintptr_t addr)
   3287  1.143      yamt {
   3288  1.143      yamt 
   3289  1.143      yamt 	return (uintptr_t)item <= addr && addr < (uintptr_t)item + pp->pr_size;
   3290  1.143      yamt }
   3291  1.143      yamt 
   3292  1.143      yamt static bool
   3293  1.143      yamt pool_in_cg(struct pool *pp, struct pool_cache_group *pcg, uintptr_t addr)
   3294  1.143      yamt {
   3295  1.143      yamt 	int i;
   3296  1.143      yamt 
   3297  1.143      yamt 	if (pcg == NULL) {
   3298  1.143      yamt 		return false;
   3299  1.143      yamt 	}
   3300  1.144      yamt 	for (i = 0; i < pcg->pcg_avail; i++) {
   3301  1.143      yamt 		if (pool_in_item(pp, pcg->pcg_objects[i].pcgo_va, addr)) {
   3302  1.143      yamt 			return true;
   3303  1.143      yamt 		}
   3304  1.143      yamt 	}
   3305  1.143      yamt 	return false;
   3306  1.143      yamt }
   3307  1.143      yamt 
   3308  1.143      yamt static bool
   3309  1.143      yamt pool_allocated(struct pool *pp, struct pool_item_header *ph, uintptr_t addr)
   3310  1.143      yamt {
   3311  1.143      yamt 
   3312  1.242      maxv 	if ((pp->pr_roflags & PR_USEBMAP) != 0) {
   3313  1.234      maxv 		unsigned int idx = pr_item_bitmap_index(pp, ph, (void *)addr);
   3314  1.143      yamt 		pool_item_bitmap_t *bitmap =
   3315  1.143      yamt 		    ph->ph_bitmap + (idx / BITMAP_SIZE);
   3316  1.286     skrll 		pool_item_bitmap_t mask = 1U << (idx & BITMAP_MASK);
   3317  1.143      yamt 
   3318  1.143      yamt 		return (*bitmap & mask) == 0;
   3319  1.143      yamt 	} else {
   3320  1.143      yamt 		struct pool_item *pi;
   3321  1.143      yamt 
   3322  1.143      yamt 		LIST_FOREACH(pi, &ph->ph_itemlist, pi_list) {
   3323  1.143      yamt 			if (pool_in_item(pp, pi, addr)) {
   3324  1.143      yamt 				return false;
   3325  1.143      yamt 			}
   3326  1.143      yamt 		}
   3327  1.143      yamt 		return true;
   3328  1.143      yamt 	}
   3329  1.143      yamt }
   3330  1.143      yamt 
   3331  1.141      yamt void
   3332  1.141      yamt pool_whatis(uintptr_t addr, void (*pr)(const char *, ...))
   3333  1.141      yamt {
   3334  1.141      yamt 	struct pool *pp;
   3335  1.141      yamt 
   3336  1.145        ad 	TAILQ_FOREACH(pp, &pool_head, pr_poollist) {
   3337  1.141      yamt 		struct pool_item_header *ph;
   3338  1.281  riastrad 		struct pool_cache *pc;
   3339  1.141      yamt 		uintptr_t item;
   3340  1.143      yamt 		bool allocated = true;
   3341  1.143      yamt 		bool incache = false;
   3342  1.143      yamt 		bool incpucache = false;
   3343  1.143      yamt 		char cpucachestr[32];
   3344  1.141      yamt 
   3345  1.141      yamt 		if ((pp->pr_roflags & PR_PHINPAGE) != 0) {
   3346  1.141      yamt 			LIST_FOREACH(ph, &pp->pr_fullpages, ph_pagelist) {
   3347  1.141      yamt 				if (pool_in_page(pp, ph, addr)) {
   3348  1.141      yamt 					goto found;
   3349  1.141      yamt 				}
   3350  1.141      yamt 			}
   3351  1.141      yamt 			LIST_FOREACH(ph, &pp->pr_partpages, ph_pagelist) {
   3352  1.141      yamt 				if (pool_in_page(pp, ph, addr)) {
   3353  1.143      yamt 					allocated =
   3354  1.143      yamt 					    pool_allocated(pp, ph, addr);
   3355  1.143      yamt 					goto found;
   3356  1.143      yamt 				}
   3357  1.143      yamt 			}
   3358  1.143      yamt 			LIST_FOREACH(ph, &pp->pr_emptypages, ph_pagelist) {
   3359  1.143      yamt 				if (pool_in_page(pp, ph, addr)) {
   3360  1.143      yamt 					allocated = false;
   3361  1.141      yamt 					goto found;
   3362  1.141      yamt 				}
   3363  1.141      yamt 			}
   3364  1.141      yamt 			continue;
   3365  1.141      yamt 		} else {
   3366  1.141      yamt 			ph = pr_find_pagehead_noalign(pp, (void *)addr);
   3367  1.141      yamt 			if (ph == NULL || !pool_in_page(pp, ph, addr)) {
   3368  1.141      yamt 				continue;
   3369  1.141      yamt 			}
   3370  1.143      yamt 			allocated = pool_allocated(pp, ph, addr);
   3371  1.141      yamt 		}
   3372  1.141      yamt found:
   3373  1.281  riastrad 		if (allocated &&
   3374  1.281  riastrad 		    (pc = atomic_load_consume(&pp->pr_cache)) != NULL) {
   3375  1.143      yamt 			struct pool_cache_group *pcg;
   3376  1.143      yamt 			int i;
   3377  1.143      yamt 
   3378  1.143      yamt 			for (pcg = pc->pc_fullgroups; pcg != NULL;
   3379  1.143      yamt 			    pcg = pcg->pcg_next) {
   3380  1.143      yamt 				if (pool_in_cg(pp, pcg, addr)) {
   3381  1.143      yamt 					incache = true;
   3382  1.143      yamt 					goto print;
   3383  1.143      yamt 				}
   3384  1.143      yamt 			}
   3385  1.183        ad 			for (i = 0; i < __arraycount(pc->pc_cpus); i++) {
   3386  1.143      yamt 				pool_cache_cpu_t *cc;
   3387  1.143      yamt 
   3388  1.143      yamt 				if ((cc = pc->pc_cpus[i]) == NULL) {
   3389  1.143      yamt 					continue;
   3390  1.143      yamt 				}
   3391  1.143      yamt 				if (pool_in_cg(pp, cc->cc_current, addr) ||
   3392  1.143      yamt 				    pool_in_cg(pp, cc->cc_previous, addr)) {
   3393  1.143      yamt 					struct cpu_info *ci =
   3394  1.170        ad 					    cpu_lookup(i);
   3395  1.143      yamt 
   3396  1.143      yamt 					incpucache = true;
   3397  1.143      yamt 					snprintf(cpucachestr,
   3398  1.143      yamt 					    sizeof(cpucachestr),
   3399  1.143      yamt 					    "cached by CPU %u",
   3400  1.153    martin 					    ci->ci_index);
   3401  1.143      yamt 					goto print;
   3402  1.143      yamt 				}
   3403  1.143      yamt 			}
   3404  1.143      yamt 		}
   3405  1.143      yamt print:
   3406  1.141      yamt 		item = (uintptr_t)ph->ph_page + ph->ph_off;
   3407  1.141      yamt 		item = item + rounddown(addr - item, pp->pr_size);
   3408  1.143      yamt 		(*pr)("%p is %p+%zu in POOL '%s' (%s)\n",
   3409  1.141      yamt 		    (void *)addr, item, (size_t)(addr - item),
   3410  1.143      yamt 		    pp->pr_wchan,
   3411  1.143      yamt 		    incpucache ? cpucachestr :
   3412  1.143      yamt 		    incache ? "cached" : allocated ? "allocated" : "free");
   3413  1.141      yamt 	}
   3414  1.141      yamt }
   3415  1.141      yamt #endif /* defined(DDB) */
   3416  1.203     joerg 
   3417  1.203     joerg static int
   3418  1.203     joerg pool_sysctl(SYSCTLFN_ARGS)
   3419  1.203     joerg {
   3420  1.203     joerg 	struct pool_sysctl data;
   3421  1.203     joerg 	struct pool *pp;
   3422  1.203     joerg 	struct pool_cache *pc;
   3423  1.203     joerg 	pool_cache_cpu_t *cc;
   3424  1.203     joerg 	int error;
   3425  1.203     joerg 	size_t i, written;
   3426  1.203     joerg 
   3427  1.203     joerg 	if (oldp == NULL) {
   3428  1.203     joerg 		*oldlenp = 0;
   3429  1.203     joerg 		TAILQ_FOREACH(pp, &pool_head, pr_poollist)
   3430  1.203     joerg 			*oldlenp += sizeof(data);
   3431  1.203     joerg 		return 0;
   3432  1.203     joerg 	}
   3433  1.203     joerg 
   3434  1.203     joerg 	memset(&data, 0, sizeof(data));
   3435  1.203     joerg 	error = 0;
   3436  1.203     joerg 	written = 0;
   3437  1.281  riastrad 	mutex_enter(&pool_head_lock);
   3438  1.203     joerg 	TAILQ_FOREACH(pp, &pool_head, pr_poollist) {
   3439  1.203     joerg 		if (written + sizeof(data) > *oldlenp)
   3440  1.203     joerg 			break;
   3441  1.281  riastrad 		pp->pr_refcnt++;
   3442  1.203     joerg 		strlcpy(data.pr_wchan, pp->pr_wchan, sizeof(data.pr_wchan));
   3443  1.203     joerg 		data.pr_pagesize = pp->pr_alloc->pa_pagesz;
   3444  1.203     joerg 		data.pr_flags = pp->pr_roflags | pp->pr_flags;
   3445  1.203     joerg #define COPY(field) data.field = pp->field
   3446  1.203     joerg 		COPY(pr_size);
   3447  1.203     joerg 
   3448  1.203     joerg 		COPY(pr_itemsperpage);
   3449  1.203     joerg 		COPY(pr_nitems);
   3450  1.203     joerg 		COPY(pr_nout);
   3451  1.203     joerg 		COPY(pr_hardlimit);
   3452  1.203     joerg 		COPY(pr_npages);
   3453  1.203     joerg 		COPY(pr_minpages);
   3454  1.203     joerg 		COPY(pr_maxpages);
   3455  1.203     joerg 
   3456  1.203     joerg 		COPY(pr_nget);
   3457  1.203     joerg 		COPY(pr_nfail);
   3458  1.203     joerg 		COPY(pr_nput);
   3459  1.203     joerg 		COPY(pr_npagealloc);
   3460  1.203     joerg 		COPY(pr_npagefree);
   3461  1.203     joerg 		COPY(pr_hiwat);
   3462  1.203     joerg 		COPY(pr_nidle);
   3463  1.203     joerg #undef COPY
   3464  1.203     joerg 
   3465  1.203     joerg 		data.pr_cache_nmiss_pcpu = 0;
   3466  1.203     joerg 		data.pr_cache_nhit_pcpu = 0;
   3467  1.271        ad 		data.pr_cache_nmiss_global = 0;
   3468  1.271        ad 		data.pr_cache_nempty = 0;
   3469  1.271        ad 		data.pr_cache_ncontended = 0;
   3470  1.271        ad 		data.pr_cache_npartial = 0;
   3471  1.281  riastrad 		if ((pc = atomic_load_consume(&pp->pr_cache)) != NULL) {
   3472  1.271        ad 			uint32_t nfull = 0;
   3473  1.203     joerg 			data.pr_cache_meta_size = pc->pc_pcgsize;
   3474  1.203     joerg 			for (i = 0; i < pc->pc_ncpu; ++i) {
   3475  1.203     joerg 				cc = pc->pc_cpus[i];
   3476  1.203     joerg 				if (cc == NULL)
   3477  1.203     joerg 					continue;
   3478  1.271        ad 				data.pr_cache_ncontended += cc->cc_contended;
   3479  1.206  knakahar 				data.pr_cache_nmiss_pcpu += cc->cc_misses;
   3480  1.206  knakahar 				data.pr_cache_nhit_pcpu += cc->cc_hits;
   3481  1.271        ad 				data.pr_cache_nmiss_global += cc->cc_pcmisses;
   3482  1.271        ad 				nfull += cc->cc_nfull; /* 32-bit rollover! */
   3483  1.272        ad 				data.pr_cache_npartial += cc->cc_npart;
   3484  1.203     joerg 			}
   3485  1.271        ad 			data.pr_cache_nfull = nfull;
   3486  1.203     joerg 		} else {
   3487  1.203     joerg 			data.pr_cache_meta_size = 0;
   3488  1.203     joerg 			data.pr_cache_nfull = 0;
   3489  1.203     joerg 		}
   3490  1.271        ad 		data.pr_cache_nhit_global = data.pr_cache_nmiss_pcpu -
   3491  1.271        ad 		    data.pr_cache_nmiss_global;
   3492  1.203     joerg 
   3493  1.281  riastrad 		if (pp->pr_refcnt == UINT_MAX) /* XXX possible? */
   3494  1.281  riastrad 			continue;
   3495  1.281  riastrad 		mutex_exit(&pool_head_lock);
   3496  1.203     joerg 		error = sysctl_copyout(l, &data, oldp, sizeof(data));
   3497  1.281  riastrad 		mutex_enter(&pool_head_lock);
   3498  1.281  riastrad 		if (--pp->pr_refcnt == 0)
   3499  1.281  riastrad 			cv_broadcast(&pool_busy);
   3500  1.203     joerg 		if (error)
   3501  1.203     joerg 			break;
   3502  1.203     joerg 		written += sizeof(data);
   3503  1.203     joerg 		oldp = (char *)oldp + sizeof(data);
   3504  1.203     joerg 	}
   3505  1.281  riastrad 	mutex_exit(&pool_head_lock);
   3506  1.203     joerg 
   3507  1.203     joerg 	*oldlenp = written;
   3508  1.203     joerg 	return error;
   3509  1.203     joerg }
   3510  1.203     joerg 
   3511  1.203     joerg SYSCTL_SETUP(sysctl_pool_setup, "sysctl kern.pool setup")
   3512  1.203     joerg {
   3513  1.203     joerg 	const struct sysctlnode *rnode = NULL;
   3514  1.203     joerg 
   3515  1.203     joerg 	sysctl_createv(clog, 0, NULL, &rnode,
   3516  1.203     joerg 		       CTLFLAG_PERMANENT,
   3517  1.203     joerg 		       CTLTYPE_STRUCT, "pool",
   3518  1.203     joerg 		       SYSCTL_DESCR("Get pool statistics"),
   3519  1.203     joerg 		       pool_sysctl, 0, NULL, 0,
   3520  1.203     joerg 		       CTL_KERN, CTL_CREATE, CTL_EOL);
   3521  1.203     joerg }
   3522