160727d8bSWarner Losh /*- 2fe267a55SPedro F. Giffuni * SPDX-License-Identifier: BSD-2-Clause-FreeBSD 3fe267a55SPedro F. Giffuni * 4ef72505eSJeff Roberson * Copyright (c) 2002-2005, 2009, 2013 Jeffrey Roberson <jeff@FreeBSD.org> 508ecce74SRobert Watson * Copyright (c) 2004, 2005 Bosko Milekic <bmilekic@FreeBSD.org> 608ecce74SRobert Watson * All rights reserved. 78355f576SJeff Roberson * 88355f576SJeff Roberson * Redistribution and use in source and binary forms, with or without 98355f576SJeff Roberson * modification, are permitted provided that the following conditions 108355f576SJeff Roberson * are met: 118355f576SJeff Roberson * 1. Redistributions of source code must retain the above copyright 128355f576SJeff Roberson * notice unmodified, this list of conditions, and the following 138355f576SJeff Roberson * disclaimer. 148355f576SJeff Roberson * 2. Redistributions in binary form must reproduce the above copyright 158355f576SJeff Roberson * notice, this list of conditions and the following disclaimer in the 168355f576SJeff Roberson * documentation and/or other materials provided with the distribution. 178355f576SJeff Roberson * 188355f576SJeff Roberson * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR 198355f576SJeff Roberson * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 208355f576SJeff Roberson * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 218355f576SJeff Roberson * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, 228355f576SJeff Roberson * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 238355f576SJeff Roberson * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 248355f576SJeff Roberson * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 258355f576SJeff Roberson * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 268355f576SJeff Roberson * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 278355f576SJeff Roberson * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 288355f576SJeff Roberson * 298355f576SJeff Roberson * $FreeBSD$ 308355f576SJeff Roberson * 318355f576SJeff Roberson */ 328355f576SJeff Roberson 33e04223bfSMark Johnston #include <sys/_bitset.h> 34*7571e249SMark Johnston #include <sys/_domainset.h> 35b28cc462SGleb Smirnoff #include <sys/_task.h> 36b28cc462SGleb Smirnoff 378355f576SJeff Roberson /* 388355f576SJeff Roberson * This file includes definitions, structures, prototypes, and inlines that 398355f576SJeff Roberson * should not be used outside of the actual implementation of UMA. 408355f576SJeff Roberson */ 418355f576SJeff Roberson 428355f576SJeff Roberson /* 43ab3185d1SJeff Roberson * The brief summary; Zones describe unique allocation types. Zones are 44ab3185d1SJeff Roberson * organized into per-CPU caches which are filled by buckets. Buckets are 45ab3185d1SJeff Roberson * organized according to memory domains. Buckets are filled from kegs which 46ab3185d1SJeff Roberson * are also organized according to memory domains. Kegs describe a unique 47ab3185d1SJeff Roberson * allocation type, backend memory provider, and layout. Kegs are associated 48ab3185d1SJeff Roberson * with one or more zones and zones reference one or more kegs. Kegs provide 49ab3185d1SJeff Roberson * slabs which are virtually contiguous collections of pages. Each slab is 50ab3185d1SJeff Roberson * broken down int one or more items that will satisfy an individual allocation. 51ab3185d1SJeff Roberson * 52ab3185d1SJeff Roberson * Allocation is satisfied in the following order: 53ab3185d1SJeff Roberson * 1) Per-CPU cache 54ab3185d1SJeff Roberson * 2) Per-domain cache of buckets 55ab3185d1SJeff Roberson * 3) Slab from any of N kegs 56ab3185d1SJeff Roberson * 4) Backend page provider 57ab3185d1SJeff Roberson * 58ab3185d1SJeff Roberson * More detail on individual objects is contained below: 598355f576SJeff Roberson * 60099a0e58SBosko Milekic * Kegs contain lists of slabs which are stored in either the full bin, empty 618355f576SJeff Roberson * bin, or partially allocated bin, to reduce fragmentation. They also contain 628355f576SJeff Roberson * the user supplied value for size, which is adjusted for alignment purposes 63099a0e58SBosko Milekic * and rsize is the result of that. The Keg also stores information for 648355f576SJeff Roberson * managing a hash of page addresses that maps pages to uma_slab_t structures 658355f576SJeff Roberson * for pages that don't have embedded uma_slab_t's. 668355f576SJeff Roberson * 67ab3185d1SJeff Roberson * Keg slab lists are organized by memory domain to support NUMA allocation 68ab3185d1SJeff Roberson * policies. By default allocations are spread across domains to reduce the 69ab3185d1SJeff Roberson * potential for hotspots. Special keg creation flags may be specified to 70ab3185d1SJeff Roberson * prefer location allocation. However there is no strict enforcement as frees 71ab3185d1SJeff Roberson * may happen on any CPU and these are returned to the CPU-local cache 72ab3185d1SJeff Roberson * regardless of the originating domain. 73ab3185d1SJeff Roberson * 748355f576SJeff Roberson * The uma_slab_t may be embedded in a UMA_SLAB_SIZE chunk of memory or it may 758355f576SJeff Roberson * be allocated off the page from a special slab zone. The free list within a 76ef72505eSJeff Roberson * slab is managed with a bitmask. For item sizes that would yield more than 77ef72505eSJeff Roberson * 10% memory waste we potentially allocate a separate uma_slab_t if this will 78ef72505eSJeff Roberson * improve the number of items per slab that will fit. 798355f576SJeff Roberson * 808355f576SJeff Roberson * The only really gross cases, with regards to memory waste, are for those 818355f576SJeff Roberson * items that are just over half the page size. You can get nearly 50% waste, 828355f576SJeff Roberson * so you fall back to the memory footprint of the power of two allocator. I 838355f576SJeff Roberson * have looked at memory allocation sizes on many of the machines available to 848355f576SJeff Roberson * me, and there does not seem to be an abundance of allocations at this range 858355f576SJeff Roberson * so at this time it may not make sense to optimize for it. This can, of 868355f576SJeff Roberson * course, be solved with dynamic slab sizes. 878355f576SJeff Roberson * 88099a0e58SBosko Milekic * Kegs may serve multiple Zones but by far most of the time they only serve 89099a0e58SBosko Milekic * one. When a Zone is created, a Keg is allocated and setup for it. While 90099a0e58SBosko Milekic * the backing Keg stores slabs, the Zone caches Buckets of items allocated 91099a0e58SBosko Milekic * from the slabs. Each Zone is equipped with an init/fini and ctor/dtor 92099a0e58SBosko Milekic * pair, as well as with its own set of small per-CPU caches, layered above 93099a0e58SBosko Milekic * the Zone's general Bucket cache. 94099a0e58SBosko Milekic * 956ab3b958SRobert Watson * The PCPU caches are protected by critical sections, and may be accessed 966ab3b958SRobert Watson * safely only from their associated CPU, while the Zones backed by the same 976ab3b958SRobert Watson * Keg all share a common Keg lock (to coalesce contention on the backing 986ab3b958SRobert Watson * slabs). The backing Keg typically only serves one Zone but in the case of 996ab3b958SRobert Watson * multiple Zones, one of the Zones is considered the Master Zone and all 1006ab3b958SRobert Watson * Zone-related stats from the Keg are done in the Master Zone. For an 1016ab3b958SRobert Watson * example of a Multi-Zone setup, refer to the Mbuf allocation code. 1028355f576SJeff Roberson */ 1038355f576SJeff Roberson 1048355f576SJeff Roberson /* 1058355f576SJeff Roberson * This is the representation for normal (Non OFFPAGE slab) 1068355f576SJeff Roberson * 1078355f576SJeff Roberson * i == item 1088355f576SJeff Roberson * s == slab pointer 1098355f576SJeff Roberson * 1108355f576SJeff Roberson * <---------------- Page (UMA_SLAB_SIZE) ------------------> 1118355f576SJeff Roberson * ___________________________________________________________ 1128355f576SJeff Roberson * | _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ ___________ | 1138355f576SJeff Roberson * ||i||i||i||i||i||i||i||i||i||i||i||i||i||i||i| |slab header|| 1148355f576SJeff Roberson * ||_||_||_||_||_||_||_||_||_||_||_||_||_||_||_| |___________|| 1158355f576SJeff Roberson * |___________________________________________________________| 1168355f576SJeff Roberson * 1178355f576SJeff Roberson * 1188355f576SJeff Roberson * This is an OFFPAGE slab. These can be larger than UMA_SLAB_SIZE. 1198355f576SJeff Roberson * 1208355f576SJeff Roberson * ___________________________________________________________ 1218355f576SJeff Roberson * | _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ _ | 1228355f576SJeff Roberson * ||i||i||i||i||i||i||i||i||i||i||i||i||i||i||i||i||i||i||i| | 1238355f576SJeff Roberson * ||_||_||_||_||_||_||_||_||_||_||_||_||_||_||_||_||_||_||_| | 1248355f576SJeff Roberson * |___________________________________________________________| 1258355f576SJeff Roberson * ___________ ^ 1268355f576SJeff Roberson * |slab header| | 1278355f576SJeff Roberson * |___________|---* 1288355f576SJeff Roberson * 1298355f576SJeff Roberson */ 1308355f576SJeff Roberson 1318355f576SJeff Roberson #ifndef VM_UMA_INT_H 1328355f576SJeff Roberson #define VM_UMA_INT_H 1338355f576SJeff Roberson 1348355f576SJeff Roberson #define UMA_SLAB_SIZE PAGE_SIZE /* How big are our slabs? */ 1358355f576SJeff Roberson #define UMA_SLAB_MASK (PAGE_SIZE - 1) /* Mask to get back to the page */ 1368355f576SJeff Roberson #define UMA_SLAB_SHIFT PAGE_SHIFT /* Number of bits PAGE_MASK */ 1378355f576SJeff Roberson 138ad97af7eSGleb Smirnoff /* Max waste percentage before going to off page slab management */ 139ad97af7eSGleb Smirnoff #define UMA_MAX_WASTE 10 1408355f576SJeff Roberson 1418355f576SJeff Roberson /* 1425073a083SGleb Smirnoff * Size of memory in a not offpage slab available for actual items. 1435073a083SGleb Smirnoff */ 1445073a083SGleb Smirnoff #define UMA_SLAB_SPACE (UMA_SLAB_SIZE - sizeof(struct uma_slab)) 1455073a083SGleb Smirnoff 1465073a083SGleb Smirnoff /* 1478355f576SJeff Roberson * I doubt there will be many cases where this is exceeded. This is the initial 1488355f576SJeff Roberson * size of the hash table for uma_slabs that are managed off page. This hash 1498355f576SJeff Roberson * does expand by powers of two. Currently it doesn't get smaller. 1508355f576SJeff Roberson */ 1518355f576SJeff Roberson #define UMA_HASH_SIZE_INIT 32 1528355f576SJeff Roberson 1538355f576SJeff Roberson /* 1548355f576SJeff Roberson * I should investigate other hashing algorithms. This should yield a low 1558355f576SJeff Roberson * number of collisions if the pages are relatively contiguous. 1568355f576SJeff Roberson */ 1578355f576SJeff Roberson 158ef72505eSJeff Roberson #define UMA_HASH(h, s) ((((uintptr_t)s) >> UMA_SLAB_SHIFT) & (h)->uh_hashmask) 1598355f576SJeff Roberson 1608355f576SJeff Roberson #define UMA_HASH_INSERT(h, s, mem) \ 1618355f576SJeff Roberson SLIST_INSERT_HEAD(&(h)->uh_slab_hash[UMA_HASH((h), \ 1624e2d83fcSAntoine Brodin (mem))], (s), us_hlink) 1638355f576SJeff Roberson #define UMA_HASH_REMOVE(h, s, mem) \ 1648355f576SJeff Roberson SLIST_REMOVE(&(h)->uh_slab_hash[UMA_HASH((h), \ 1654e2d83fcSAntoine Brodin (mem))], (s), uma_slab, us_hlink) 1668355f576SJeff Roberson 1678355f576SJeff Roberson /* Hash table for freed address -> slab translation */ 1688355f576SJeff Roberson 1698355f576SJeff Roberson SLIST_HEAD(slabhead, uma_slab); 1708355f576SJeff Roberson 1718355f576SJeff Roberson struct uma_hash { 1728355f576SJeff Roberson struct slabhead *uh_slab_hash; /* Hash table for slabs */ 1738355f576SJeff Roberson int uh_hashsize; /* Current size of the hash table */ 1748355f576SJeff Roberson int uh_hashmask; /* Mask used during hashing */ 1758355f576SJeff Roberson }; 1768355f576SJeff Roberson 1778355f576SJeff Roberson /* 1785e4bb93cSKip Macy * align field or structure to cache line 1795e4bb93cSKip Macy */ 18012f69195SJustin Hibbits #if defined(__amd64__) || defined(__powerpc64__) 181782e38aaSMateusz Guzik #define UMA_ALIGN __aligned(128) 1821a23373cSKip Macy #else 1836b4391d7SKip Macy #define UMA_ALIGN 1841a23373cSKip Macy #endif 1855e4bb93cSKip Macy 1865e4bb93cSKip Macy /* 1878355f576SJeff Roberson * Structures for per cpu queues. 1888355f576SJeff Roberson */ 1898355f576SJeff Roberson 1908355f576SJeff Roberson struct uma_bucket { 1918355f576SJeff Roberson LIST_ENTRY(uma_bucket) ub_link; /* Link into the zone */ 192306abf0fSGleb Smirnoff int16_t ub_cnt; /* Count of items in bucket. */ 193cae33c14SJeff Roberson int16_t ub_entries; /* Max items. */ 194cae33c14SJeff Roberson void *ub_bucket[]; /* actual allocation storage */ 1951a23373cSKip Macy }; 1968355f576SJeff Roberson 1978355f576SJeff Roberson typedef struct uma_bucket * uma_bucket_t; 1988355f576SJeff Roberson 1998355f576SJeff Roberson struct uma_cache { 2008355f576SJeff Roberson uma_bucket_t uc_freebucket; /* Bucket we're freeing to */ 2018355f576SJeff Roberson uma_bucket_t uc_allocbucket; /* Bucket to allocate from */ 20285dcf349SGleb Smirnoff uint64_t uc_allocs; /* Count of allocations */ 20385dcf349SGleb Smirnoff uint64_t uc_frees; /* Count of frees */ 2045e4bb93cSKip Macy } UMA_ALIGN; 2058355f576SJeff Roberson 2068355f576SJeff Roberson typedef struct uma_cache * uma_cache_t; 2078355f576SJeff Roberson 2088355f576SJeff Roberson /* 209ab3185d1SJeff Roberson * Per-domain memory list. Embedded in the kegs. 210ab3185d1SJeff Roberson */ 211ab3185d1SJeff Roberson struct uma_domain { 212ab3185d1SJeff Roberson LIST_HEAD(,uma_slab) ud_part_slab; /* partially allocated slabs */ 213ab3185d1SJeff Roberson LIST_HEAD(,uma_slab) ud_free_slab; /* empty slab list */ 214ab3185d1SJeff Roberson LIST_HEAD(,uma_slab) ud_full_slab; /* full slabs */ 215ab3185d1SJeff Roberson }; 216ab3185d1SJeff Roberson 217ab3185d1SJeff Roberson typedef struct uma_domain * uma_domain_t; 218ab3185d1SJeff Roberson 219ab3185d1SJeff Roberson /* 220099a0e58SBosko Milekic * Keg management structure 221099a0e58SBosko Milekic * 222099a0e58SBosko Milekic * TODO: Optimize for cache line size 223099a0e58SBosko Milekic * 224099a0e58SBosko Milekic */ 225099a0e58SBosko Milekic struct uma_keg { 22663b5557bSJeff Roberson struct mtx uk_lock; /* Lock for the keg */ 227099a0e58SBosko Milekic struct uma_hash uk_hash; 228099a0e58SBosko Milekic LIST_HEAD(,uma_zone) uk_zones; /* Keg's zones */ 229099a0e58SBosko Milekic 230194a979eSMark Johnston struct domainset_ref uk_dr; /* Domain selection policy. */ 23185dcf349SGleb Smirnoff uint32_t uk_align; /* Alignment mask */ 23285dcf349SGleb Smirnoff uint32_t uk_pages; /* Total page count */ 23385dcf349SGleb Smirnoff uint32_t uk_free; /* Count of items free in slabs */ 2346fd34d6fSJeff Roberson uint32_t uk_reserve; /* Number of reserved items. */ 23585dcf349SGleb Smirnoff uint32_t uk_size; /* Requested size of each item */ 23685dcf349SGleb Smirnoff uint32_t uk_rsize; /* Real size of each item */ 23785dcf349SGleb Smirnoff uint32_t uk_maxpages; /* Maximum number of pages to alloc */ 238099a0e58SBosko Milekic 239099a0e58SBosko Milekic uma_init uk_init; /* Keg's init routine */ 240099a0e58SBosko Milekic uma_fini uk_fini; /* Keg's fini routine */ 241099a0e58SBosko Milekic uma_alloc uk_allocf; /* Allocation function */ 242099a0e58SBosko Milekic uma_free uk_freef; /* Free routine */ 243099a0e58SBosko Milekic 244a4915c21SAttilio Rao u_long uk_offset; /* Next free offset from base KVA */ 245a4915c21SAttilio Rao vm_offset_t uk_kva; /* Zone base KVA */ 246099a0e58SBosko Milekic uma_zone_t uk_slabzone; /* Slab zone backing us, if OFFPAGE */ 247099a0e58SBosko Milekic 2482d54d4bbSMark Johnston uint32_t uk_pgoff; /* Offset to uma_slab struct */ 24985dcf349SGleb Smirnoff uint16_t uk_ppera; /* pages per allocation from backend */ 25085dcf349SGleb Smirnoff uint16_t uk_ipers; /* Items per slab */ 25185dcf349SGleb Smirnoff uint32_t uk_flags; /* Internal flags */ 252ad97af7eSGleb Smirnoff 253ad97af7eSGleb Smirnoff /* Least used fields go to the last cache line. */ 254ad97af7eSGleb Smirnoff const char *uk_name; /* Name of creating zone. */ 255ad97af7eSGleb Smirnoff LIST_ENTRY(uma_keg) uk_link; /* List of all kegs */ 256ab3185d1SJeff Roberson 257ab3185d1SJeff Roberson /* Must be last, variable sized. */ 258ab3185d1SJeff Roberson struct uma_domain uk_domain[]; /* Keg's slab lists. */ 259099a0e58SBosko Milekic }; 260099a0e58SBosko Milekic typedef struct uma_keg * uma_keg_t; 261099a0e58SBosko Milekic 262ef72505eSJeff Roberson /* 263ef72505eSJeff Roberson * Free bits per-slab. 264ef72505eSJeff Roberson */ 265ef72505eSJeff Roberson #define SLAB_SETSIZE (PAGE_SIZE / UMA_SMALLEST_UNIT) 266ef72505eSJeff Roberson BITSET_DEFINE(slabbits, SLAB_SETSIZE); 267099a0e58SBosko Milekic 268ef72505eSJeff Roberson /* 269ef72505eSJeff Roberson * The slab structure manages a single contiguous allocation from backing 270ef72505eSJeff Roberson * store and subdivides it into individually allocatable items. 271ef72505eSJeff Roberson */ 272ef72505eSJeff Roberson struct uma_slab { 273099a0e58SBosko Milekic uma_keg_t us_keg; /* Keg we live in */ 274099a0e58SBosko Milekic union { 275099a0e58SBosko Milekic LIST_ENTRY(uma_slab) _us_link; /* slabs in zone */ 276099a0e58SBosko Milekic unsigned long _us_size; /* Size of allocation */ 277099a0e58SBosko Milekic } us_type; 278099a0e58SBosko Milekic SLIST_ENTRY(uma_slab) us_hlink; /* Link for hash table */ 27985dcf349SGleb Smirnoff uint8_t *us_data; /* First item */ 280ef72505eSJeff Roberson struct slabbits us_free; /* Free bitmask. */ 281ef72505eSJeff Roberson #ifdef INVARIANTS 282ef72505eSJeff Roberson struct slabbits us_debugfree; /* Debug bitmask. */ 283ef72505eSJeff Roberson #endif 28485dcf349SGleb Smirnoff uint16_t us_freecount; /* How many are free? */ 28585dcf349SGleb Smirnoff uint8_t us_flags; /* Page flags see uma.h */ 286ab3185d1SJeff Roberson uint8_t us_domain; /* Backing NUMA domain. */ 287099a0e58SBosko Milekic }; 288099a0e58SBosko Milekic 289ef72505eSJeff Roberson #define us_link us_type._us_link 290ef72505eSJeff Roberson #define us_size us_type._us_size 291099a0e58SBosko Milekic 292ab3185d1SJeff Roberson #if MAXMEMDOM >= 255 293ab3185d1SJeff Roberson #error "Slab domain type insufficient" 294ab3185d1SJeff Roberson #endif 295ab3185d1SJeff Roberson 296099a0e58SBosko Milekic typedef struct uma_slab * uma_slab_t; 297ab3185d1SJeff Roberson typedef uma_slab_t (*uma_slaballoc)(uma_zone_t, uma_keg_t, int, int); 298e20a199fSJeff Roberson 299e20a199fSJeff Roberson struct uma_klink { 300e20a199fSJeff Roberson LIST_ENTRY(uma_klink) kl_link; 301e20a199fSJeff Roberson uma_keg_t kl_keg; 302e20a199fSJeff Roberson }; 303e20a199fSJeff Roberson typedef struct uma_klink *uma_klink_t; 304e20a199fSJeff Roberson 305ab3185d1SJeff Roberson struct uma_zone_domain { 306ab3185d1SJeff Roberson LIST_HEAD(,uma_bucket) uzd_buckets; /* full buckets */ 307ab3185d1SJeff Roberson }; 308ab3185d1SJeff Roberson 309ab3185d1SJeff Roberson typedef struct uma_zone_domain * uma_zone_domain_t; 310ab3185d1SJeff Roberson 311244f4554SBosko Milekic /* 3128355f576SJeff Roberson * Zone management structure 3138355f576SJeff Roberson * 3148355f576SJeff Roberson * TODO: Optimize for cache line size 3158355f576SJeff Roberson * 3168355f576SJeff Roberson */ 3178355f576SJeff Roberson struct uma_zone { 31863b5557bSJeff Roberson /* Offset 0, used in alloc/free fast/medium fast path and const. */ 31963b5557bSJeff Roberson struct mtx *uz_lockptr; 320bb196eb4SMatthew D Fleming const char *uz_name; /* Text name of the zone */ 321ab3185d1SJeff Roberson struct uma_zone_domain *uz_domain; /* per-domain buckets */ 32263b5557bSJeff Roberson uint32_t uz_flags; /* Flags inherited from kegs */ 32363b5557bSJeff Roberson uint32_t uz_size; /* Size inherited from kegs */ 3248355f576SJeff Roberson uma_ctor uz_ctor; /* Constructor for each allocation */ 3258355f576SJeff Roberson uma_dtor uz_dtor; /* Destructor */ 3268355f576SJeff Roberson uma_init uz_init; /* Initializer for each item */ 3270095a784SJeff Roberson uma_fini uz_fini; /* Finalizer for each item. */ 32863b5557bSJeff Roberson 32963b5557bSJeff Roberson /* Offset 64, used in bucket replenish. */ 3300095a784SJeff Roberson uma_import uz_import; /* Import new memory to cache. */ 3310095a784SJeff Roberson uma_release uz_release; /* Release memory from cache. */ 3320095a784SJeff Roberson void *uz_arg; /* Import/release argument. */ 33363b5557bSJeff Roberson uma_slaballoc uz_slab; /* Allocate a slab from the backend. */ 33463b5557bSJeff Roberson uint16_t uz_count; /* Amount of items in full bucket */ 33563b5557bSJeff Roberson uint16_t uz_count_min; /* Minimal amount of items there */ 33663b5557bSJeff Roberson /* 32bit pad on 64bit. */ 33763b5557bSJeff Roberson LIST_ENTRY(uma_zone) uz_link; /* List of all zones in keg */ 33863b5557bSJeff Roberson LIST_HEAD(,uma_klink) uz_kegs; /* List of kegs. */ 339099a0e58SBosko Milekic 34063b5557bSJeff Roberson /* Offset 128 Rare. */ 34163b5557bSJeff Roberson /* 34263b5557bSJeff Roberson * The lock is placed here to avoid adjacent line prefetcher 34363b5557bSJeff Roberson * in fast paths and to take up space near infrequently accessed 34463b5557bSJeff Roberson * members to reduce alignment overhead. 34563b5557bSJeff Roberson */ 34663b5557bSJeff Roberson struct mtx uz_lock; /* Lock for the zone */ 34763b5557bSJeff Roberson struct uma_klink uz_klink; /* klink for first keg. */ 34863b5557bSJeff Roberson /* The next two fields are used to print a rate-limited warnings. */ 34963b5557bSJeff Roberson const char *uz_warning; /* Warning to print on failure */ 35063b5557bSJeff Roberson struct timeval uz_ratecheck; /* Warnings rate-limiting */ 35163b5557bSJeff Roberson struct task uz_maxaction; /* Task to run when at limit */ 3525e4bb93cSKip Macy 35363b5557bSJeff Roberson /* 16 bytes of pad. */ 35463b5557bSJeff Roberson 35563b5557bSJeff Roberson /* Offset 256, atomic stats. */ 3560095a784SJeff Roberson volatile u_long uz_allocs UMA_ALIGN; /* Total number of allocations */ 3570095a784SJeff Roberson volatile u_long uz_fails; /* Total number of alloc failures */ 3580095a784SJeff Roberson volatile u_long uz_frees; /* Total number of frees */ 35985dcf349SGleb Smirnoff uint64_t uz_sleeps; /* Total number of alloc sleeps */ 36054503a13SJonathan T. Looney 3618355f576SJeff Roberson /* 3628355f576SJeff Roberson * This HAS to be the last item because we adjust the zone size 3638355f576SJeff Roberson * based on NCPU and then allocate the space for the zones. 3648355f576SJeff Roberson */ 365ab3185d1SJeff Roberson struct uma_cache uz_cpu[]; /* Per cpu caches */ 366ab3185d1SJeff Roberson 367ab3185d1SJeff Roberson /* uz_domain follows here. */ 3688355f576SJeff Roberson }; 3698355f576SJeff Roberson 370b60f5b79SJeff Roberson /* 371b60f5b79SJeff Roberson * These flags must not overlap with the UMA_ZONE flags specified in uma.h. 372b60f5b79SJeff Roberson */ 373e20a199fSJeff Roberson #define UMA_ZFLAG_MULTI 0x04000000 /* Multiple kegs in the zone. */ 374e20a199fSJeff Roberson #define UMA_ZFLAG_DRAINING 0x08000000 /* Running zone_drain. */ 3756fd34d6fSJeff Roberson #define UMA_ZFLAG_BUCKET 0x10000000 /* Bucket zone. */ 3762018f30cSMike Silbersack #define UMA_ZFLAG_INTERNAL 0x20000000 /* No offpage no PCPU. */ 3772018f30cSMike Silbersack #define UMA_ZFLAG_FULL 0x40000000 /* Reached uz_maxpages */ 3782018f30cSMike Silbersack #define UMA_ZFLAG_CACHEONLY 0x80000000 /* Don't ask VM for buckets. */ 3798355f576SJeff Roberson 3806fd34d6fSJeff Roberson #define UMA_ZFLAG_INHERIT \ 3816fd34d6fSJeff Roberson (UMA_ZFLAG_INTERNAL | UMA_ZFLAG_CACHEONLY | UMA_ZFLAG_BUCKET) 382e20a199fSJeff Roberson 3830095a784SJeff Roberson static inline uma_keg_t 3840095a784SJeff Roberson zone_first_keg(uma_zone_t zone) 3850095a784SJeff Roberson { 386af526374SJeff Roberson uma_klink_t klink; 3870095a784SJeff Roberson 388af526374SJeff Roberson klink = LIST_FIRST(&zone->uz_kegs); 389af526374SJeff Roberson return (klink != NULL) ? klink->kl_keg : NULL; 3900095a784SJeff Roberson } 3910095a784SJeff Roberson 3925e4bb93cSKip Macy #undef UMA_ALIGN 3935e4bb93cSKip Macy 394af17e9a9SRobert Watson #ifdef _KERNEL 3958355f576SJeff Roberson /* Internal prototypes */ 39685dcf349SGleb Smirnoff static __inline uma_slab_t hash_sfind(struct uma_hash *hash, uint8_t *data); 397f2c2231eSRyan Stone void *uma_large_malloc(vm_size_t size, int wait); 398ab3185d1SJeff Roberson void *uma_large_malloc_domain(vm_size_t size, int domain, int wait); 3998355f576SJeff Roberson void uma_large_free(uma_slab_t slab); 4008355f576SJeff Roberson 4018355f576SJeff Roberson /* Lock Macros */ 4028355f576SJeff Roberson 403e20a199fSJeff Roberson #define KEG_LOCK_INIT(k, lc) \ 40428bc4419SJeff Roberson do { \ 40528bc4419SJeff Roberson if ((lc)) \ 406e20a199fSJeff Roberson mtx_init(&(k)->uk_lock, (k)->uk_name, \ 407e20a199fSJeff Roberson (k)->uk_name, MTX_DEF | MTX_DUPOK); \ 40828bc4419SJeff Roberson else \ 409e20a199fSJeff Roberson mtx_init(&(k)->uk_lock, (k)->uk_name, \ 41028bc4419SJeff Roberson "UMA zone", MTX_DEF | MTX_DUPOK); \ 41128bc4419SJeff Roberson } while (0) 41228bc4419SJeff Roberson 413e20a199fSJeff Roberson #define KEG_LOCK_FINI(k) mtx_destroy(&(k)->uk_lock) 414e20a199fSJeff Roberson #define KEG_LOCK(k) mtx_lock(&(k)->uk_lock) 415e20a199fSJeff Roberson #define KEG_UNLOCK(k) mtx_unlock(&(k)->uk_lock) 416af526374SJeff Roberson 417af526374SJeff Roberson #define ZONE_LOCK_INIT(z, lc) \ 418af526374SJeff Roberson do { \ 419af526374SJeff Roberson if ((lc)) \ 420af526374SJeff Roberson mtx_init(&(z)->uz_lock, (z)->uz_name, \ 421af526374SJeff Roberson (z)->uz_name, MTX_DEF | MTX_DUPOK); \ 422af526374SJeff Roberson else \ 423af526374SJeff Roberson mtx_init(&(z)->uz_lock, (z)->uz_name, \ 424af526374SJeff Roberson "UMA zone", MTX_DEF | MTX_DUPOK); \ 425af526374SJeff Roberson } while (0) 426af526374SJeff Roberson 427af526374SJeff Roberson #define ZONE_LOCK(z) mtx_lock((z)->uz_lockptr) 428af526374SJeff Roberson #define ZONE_TRYLOCK(z) mtx_trylock((z)->uz_lockptr) 429af526374SJeff Roberson #define ZONE_UNLOCK(z) mtx_unlock((z)->uz_lockptr) 430af526374SJeff Roberson #define ZONE_LOCK_FINI(z) mtx_destroy(&(z)->uz_lock) 4318355f576SJeff Roberson 4328355f576SJeff Roberson /* 4338355f576SJeff Roberson * Find a slab within a hash table. This is used for OFFPAGE zones to lookup 4348355f576SJeff Roberson * the slab structure. 4358355f576SJeff Roberson * 4368355f576SJeff Roberson * Arguments: 4378355f576SJeff Roberson * hash The hash table to search. 4388355f576SJeff Roberson * data The base page of the item. 4398355f576SJeff Roberson * 4408355f576SJeff Roberson * Returns: 4418355f576SJeff Roberson * A pointer to a slab if successful, else NULL. 4428355f576SJeff Roberson */ 4438355f576SJeff Roberson static __inline uma_slab_t 44485dcf349SGleb Smirnoff hash_sfind(struct uma_hash *hash, uint8_t *data) 4458355f576SJeff Roberson { 4468355f576SJeff Roberson uma_slab_t slab; 4478355f576SJeff Roberson int hval; 4488355f576SJeff Roberson 4498355f576SJeff Roberson hval = UMA_HASH(hash, data); 4508355f576SJeff Roberson 4518355f576SJeff Roberson SLIST_FOREACH(slab, &hash->uh_slab_hash[hval], us_hlink) { 45285dcf349SGleb Smirnoff if ((uint8_t *)slab->us_data == data) 4538355f576SJeff Roberson return (slab); 4548355f576SJeff Roberson } 4558355f576SJeff Roberson return (NULL); 4568355f576SJeff Roberson } 4578355f576SJeff Roberson 45899571dc3SJeff Roberson static __inline uma_slab_t 45999571dc3SJeff Roberson vtoslab(vm_offset_t va) 46099571dc3SJeff Roberson { 46199571dc3SJeff Roberson vm_page_t p; 46299571dc3SJeff Roberson 46399571dc3SJeff Roberson p = PHYS_TO_VM_PAGE(pmap_kextract(va)); 4649eab5484SKonstantin Belousov return ((uma_slab_t)p->plinks.s.pv); 46599571dc3SJeff Roberson } 46699571dc3SJeff Roberson 46799571dc3SJeff Roberson static __inline void 46899571dc3SJeff Roberson vsetslab(vm_offset_t va, uma_slab_t slab) 46999571dc3SJeff Roberson { 47099571dc3SJeff Roberson vm_page_t p; 47199571dc3SJeff Roberson 4726fc96493SOlivier Houchard p = PHYS_TO_VM_PAGE(pmap_kextract(va)); 473c325e866SKonstantin Belousov p->plinks.s.pv = slab; 47499571dc3SJeff Roberson } 47599571dc3SJeff Roberson 47648eea375SJeff Roberson /* 47748eea375SJeff Roberson * The following two functions may be defined by architecture specific code 478763df3ecSPedro F. Giffuni * if they can provide more efficient allocation functions. This is useful 47948eea375SJeff Roberson * for using direct mapped addresses. 48048eea375SJeff Roberson */ 481ab3185d1SJeff Roberson void *uma_small_alloc(uma_zone_t zone, vm_size_t bytes, int domain, 482ab3185d1SJeff Roberson uint8_t *pflag, int wait); 483f2c2231eSRyan Stone void uma_small_free(void *mem, vm_size_t size, uint8_t flags); 4842e47807cSJeff Roberson 4852e47807cSJeff Roberson /* Set a global soft limit on UMA managed memory. */ 4862e47807cSJeff Roberson void uma_set_limit(unsigned long limit); 487af17e9a9SRobert Watson #endif /* _KERNEL */ 48848eea375SJeff Roberson 4898355f576SJeff Roberson #endif /* VM_UMA_INT_H */ 490