10Sstevel@tonic-gate /* 20Sstevel@tonic-gate * CDDL HEADER START 30Sstevel@tonic-gate * 40Sstevel@tonic-gate * The contents of this file are subject to the terms of the 50Sstevel@tonic-gate * Common Development and Distribution License, Version 1.0 only 60Sstevel@tonic-gate * (the "License"). You may not use this file except in compliance 70Sstevel@tonic-gate * with the License. 80Sstevel@tonic-gate * 90Sstevel@tonic-gate * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE 100Sstevel@tonic-gate * or http://www.opensolaris.org/os/licensing. 110Sstevel@tonic-gate * See the License for the specific language governing permissions 120Sstevel@tonic-gate * and limitations under the License. 130Sstevel@tonic-gate * 140Sstevel@tonic-gate * When distributing Covered Code, include this CDDL HEADER in each 150Sstevel@tonic-gate * file and include the License file at usr/src/OPENSOLARIS.LICENSE. 160Sstevel@tonic-gate * If applicable, add the following below this CDDL HEADER, with the 170Sstevel@tonic-gate * fields enclosed by brackets "[]" replaced with your own identifying 180Sstevel@tonic-gate * information: Portions Copyright [yyyy] [name of copyright owner] 190Sstevel@tonic-gate * 200Sstevel@tonic-gate * CDDL HEADER END 210Sstevel@tonic-gate */ 220Sstevel@tonic-gate /* 230Sstevel@tonic-gate * Copyright 2005 Sun Microsystems, Inc. All rights reserved. 240Sstevel@tonic-gate * Use is subject to license terms. 250Sstevel@tonic-gate */ 260Sstevel@tonic-gate 270Sstevel@tonic-gate /* Copyright (c) 1984, 1986, 1987, 1988, 1989 AT&T */ 280Sstevel@tonic-gate /* All Rights Reserved */ 290Sstevel@tonic-gate 300Sstevel@tonic-gate /* 310Sstevel@tonic-gate * University Copyright- Copyright (c) 1982, 1986, 1988 320Sstevel@tonic-gate * The Regents of the University of California 330Sstevel@tonic-gate * All Rights Reserved 340Sstevel@tonic-gate * 350Sstevel@tonic-gate * University Acknowledgment- Portions of this document are derived from 360Sstevel@tonic-gate * software developed by the University of California, Berkeley, and its 370Sstevel@tonic-gate * contributors. 380Sstevel@tonic-gate */ 390Sstevel@tonic-gate 400Sstevel@tonic-gate #ifndef _VM_PAGE_H 410Sstevel@tonic-gate #define _VM_PAGE_H 420Sstevel@tonic-gate 430Sstevel@tonic-gate #pragma ident "%Z%%M% %I% %E% SMI" 440Sstevel@tonic-gate 450Sstevel@tonic-gate #include <vm/seg.h> 460Sstevel@tonic-gate 470Sstevel@tonic-gate #ifdef __cplusplus 480Sstevel@tonic-gate extern "C" { 490Sstevel@tonic-gate #endif 500Sstevel@tonic-gate 510Sstevel@tonic-gate #if defined(_KERNEL) || defined(_KMEMUSER) 520Sstevel@tonic-gate 530Sstevel@tonic-gate /* 540Sstevel@tonic-gate * Shared/Exclusive lock. 550Sstevel@tonic-gate */ 560Sstevel@tonic-gate 570Sstevel@tonic-gate /* 580Sstevel@tonic-gate * Types of page locking supported by page_lock & friends. 590Sstevel@tonic-gate */ 600Sstevel@tonic-gate typedef enum { 610Sstevel@tonic-gate SE_SHARED, 620Sstevel@tonic-gate SE_EXCL /* exclusive lock (value == -1) */ 630Sstevel@tonic-gate } se_t; 640Sstevel@tonic-gate 650Sstevel@tonic-gate /* 660Sstevel@tonic-gate * For requesting that page_lock reclaim the page from the free list. 670Sstevel@tonic-gate */ 680Sstevel@tonic-gate typedef enum { 690Sstevel@tonic-gate P_RECLAIM, /* reclaim page from free list */ 700Sstevel@tonic-gate P_NO_RECLAIM /* DON`T reclaim the page */ 710Sstevel@tonic-gate } reclaim_t; 720Sstevel@tonic-gate 730Sstevel@tonic-gate /* 740Sstevel@tonic-gate * Callers of page_try_reclaim_lock and page_lock_es can use this flag 750Sstevel@tonic-gate * to get SE_EXCL access before reader/writers are given access. 760Sstevel@tonic-gate */ 770Sstevel@tonic-gate #define SE_EXCL_WANTED 0x02 780Sstevel@tonic-gate 790Sstevel@tonic-gate #endif /* _KERNEL | _KMEMUSER */ 800Sstevel@tonic-gate 810Sstevel@tonic-gate typedef int selock_t; 820Sstevel@tonic-gate 830Sstevel@tonic-gate /* 840Sstevel@tonic-gate * Define VM_STATS to turn on all sorts of statistic gathering about 850Sstevel@tonic-gate * the VM layer. By default, it is only turned on when DEBUG is 860Sstevel@tonic-gate * also defined. 870Sstevel@tonic-gate */ 880Sstevel@tonic-gate #ifdef DEBUG 890Sstevel@tonic-gate #define VM_STATS 900Sstevel@tonic-gate #endif /* DEBUG */ 910Sstevel@tonic-gate 920Sstevel@tonic-gate #ifdef VM_STATS 930Sstevel@tonic-gate #define VM_STAT_ADD(stat) (stat)++ 940Sstevel@tonic-gate #define VM_STAT_COND_ADD(cond, stat) ((void) (!(cond) || (stat)++)) 950Sstevel@tonic-gate #else 960Sstevel@tonic-gate #define VM_STAT_ADD(stat) 970Sstevel@tonic-gate #define VM_STAT_COND_ADD(cond, stat) 980Sstevel@tonic-gate #endif /* VM_STATS */ 990Sstevel@tonic-gate 1000Sstevel@tonic-gate #ifdef _KERNEL 1010Sstevel@tonic-gate 1020Sstevel@tonic-gate /* 1030Sstevel@tonic-gate * Macros to acquire and release the page logical lock. 1040Sstevel@tonic-gate */ 1050Sstevel@tonic-gate #define page_struct_lock(pp) mutex_enter(&page_llock) 1060Sstevel@tonic-gate #define page_struct_unlock(pp) mutex_exit(&page_llock) 1070Sstevel@tonic-gate 1080Sstevel@tonic-gate #endif /* _KERNEL */ 1090Sstevel@tonic-gate 1100Sstevel@tonic-gate #include <sys/t_lock.h> 1110Sstevel@tonic-gate 1120Sstevel@tonic-gate struct as; 1130Sstevel@tonic-gate 1140Sstevel@tonic-gate /* 1150Sstevel@tonic-gate * Each physical page has a page structure, which is used to maintain 1160Sstevel@tonic-gate * these pages as a cache. A page can be found via a hashed lookup 1170Sstevel@tonic-gate * based on the [vp, offset]. If a page has an [vp, offset] identity, 1180Sstevel@tonic-gate * then it is entered on a doubly linked circular list off the 1190Sstevel@tonic-gate * vnode using the vpnext/vpprev pointers. If the p_free bit 1200Sstevel@tonic-gate * is on, then the page is also on a doubly linked circular free 1210Sstevel@tonic-gate * list using next/prev pointers. If the "p_selock" and "p_iolock" 1220Sstevel@tonic-gate * are held, then the page is currently being read in (exclusive p_selock) 1230Sstevel@tonic-gate * or written back (shared p_selock). In this case, the next/prev pointers 1240Sstevel@tonic-gate * are used to link the pages together for a consecutive i/o request. If 1250Sstevel@tonic-gate * the page is being brought in from its backing store, then other processes 1260Sstevel@tonic-gate * will wait for the i/o to complete before attaching to the page since it 1270Sstevel@tonic-gate * will have an "exclusive" lock. 1280Sstevel@tonic-gate * 1290Sstevel@tonic-gate * Each page structure has the locks described below along with 1300Sstevel@tonic-gate * the fields they protect: 1310Sstevel@tonic-gate * 1320Sstevel@tonic-gate * p_selock This is a per-page shared/exclusive lock that is 1330Sstevel@tonic-gate * used to implement the logical shared/exclusive 1340Sstevel@tonic-gate * lock for each page. The "shared" lock is normally 1350Sstevel@tonic-gate * used in most cases while the "exclusive" lock is 1360Sstevel@tonic-gate * required to destroy or retain exclusive access to 1370Sstevel@tonic-gate * a page (e.g., while reading in pages). The appropriate 1380Sstevel@tonic-gate * lock is always held whenever there is any reference 1390Sstevel@tonic-gate * to a page structure (e.g., during i/o). 1400Sstevel@tonic-gate * (Note that with the addition of the "writer-lock-wanted" 1410Sstevel@tonic-gate * semantics (via SE_EWANTED), threads must not acquire 1420Sstevel@tonic-gate * multiple reader locks or else a deadly embrace will 1430Sstevel@tonic-gate * occur in the following situation: thread 1 obtains a 1440Sstevel@tonic-gate * reader lock; next thread 2 fails to get a writer lock 1450Sstevel@tonic-gate * but specified SE_EWANTED so it will wait by either 1460Sstevel@tonic-gate * blocking (when using page_lock_es) or spinning while 1470Sstevel@tonic-gate * retrying (when using page_try_reclaim_lock) until the 1480Sstevel@tonic-gate * reader lock is released; then thread 1 attempts to 1490Sstevel@tonic-gate * get another reader lock but is denied due to 1500Sstevel@tonic-gate * SE_EWANTED being set, and now both threads are in a 1510Sstevel@tonic-gate * deadly embrace.) 1520Sstevel@tonic-gate * 1530Sstevel@tonic-gate * p_hash 1540Sstevel@tonic-gate * p_vnode 1550Sstevel@tonic-gate * p_offset 1560Sstevel@tonic-gate * 1570Sstevel@tonic-gate * p_free 1580Sstevel@tonic-gate * p_age 1590Sstevel@tonic-gate * 1600Sstevel@tonic-gate * p_iolock This is a binary semaphore lock that provides 1610Sstevel@tonic-gate * exclusive access to the i/o list links in each 1620Sstevel@tonic-gate * page structure. It is always held while the page 1630Sstevel@tonic-gate * is on an i/o list (i.e., involved in i/o). That is, 1640Sstevel@tonic-gate * even though a page may be only `shared' locked 1650Sstevel@tonic-gate * while it is doing a write, the following fields may 1660Sstevel@tonic-gate * change anyway. Normally, the page must be 1670Sstevel@tonic-gate * `exclusively' locked to change anything in it. 1680Sstevel@tonic-gate * 1690Sstevel@tonic-gate * p_next 1700Sstevel@tonic-gate * p_prev 1710Sstevel@tonic-gate * 1720Sstevel@tonic-gate * The following fields are protected by the global page_llock: 1730Sstevel@tonic-gate * 1740Sstevel@tonic-gate * p_lckcnt 1750Sstevel@tonic-gate * p_cowcnt 1760Sstevel@tonic-gate * 1770Sstevel@tonic-gate * The following lists are protected by the global page_freelock: 1780Sstevel@tonic-gate * 1790Sstevel@tonic-gate * page_cachelist 1800Sstevel@tonic-gate * page_freelist 1810Sstevel@tonic-gate * 1820Sstevel@tonic-gate * The following, for our purposes, are protected by 1830Sstevel@tonic-gate * the global freemem_lock: 1840Sstevel@tonic-gate * 1850Sstevel@tonic-gate * freemem 1860Sstevel@tonic-gate * freemem_wait 1870Sstevel@tonic-gate * freemem_cv 1880Sstevel@tonic-gate * 1890Sstevel@tonic-gate * The following fields are protected by hat layer lock(s). When a page 1900Sstevel@tonic-gate * structure is not mapped and is not associated with a vnode (after a call 1910Sstevel@tonic-gate * to page_hashout() for example) the p_nrm field may be modified with out 1920Sstevel@tonic-gate * holding the hat layer lock: 1930Sstevel@tonic-gate * 1940Sstevel@tonic-gate * p_nrm 1950Sstevel@tonic-gate * p_mapping 1960Sstevel@tonic-gate * p_share 1970Sstevel@tonic-gate * 1980Sstevel@tonic-gate * The following field is file system dependent. How it is used and 1990Sstevel@tonic-gate * the locking strategies applied are up to the individual file system 2000Sstevel@tonic-gate * implementation. 2010Sstevel@tonic-gate * 2020Sstevel@tonic-gate * p_fsdata 2030Sstevel@tonic-gate * 2040Sstevel@tonic-gate * The page structure is used to represent and control the system's 2050Sstevel@tonic-gate * physical pages. There is one instance of the structure for each 2060Sstevel@tonic-gate * page that is not permenately allocated. For example, the pages that 2070Sstevel@tonic-gate * hold the page structures are permanently held by the kernel 2080Sstevel@tonic-gate * and hence do not need page structures to track them. The array 2090Sstevel@tonic-gate * of page structures is allocated early on in the kernel's life and 2100Sstevel@tonic-gate * is based on the amount of available physical memory. 2110Sstevel@tonic-gate * 2120Sstevel@tonic-gate * Each page structure may simultaneously appear on several linked lists. 2130Sstevel@tonic-gate * The lists are: hash list, free or in i/o list, and a vnode's page list. 2140Sstevel@tonic-gate * Each type of list is protected by a different group of mutexes as described 2150Sstevel@tonic-gate * below: 2160Sstevel@tonic-gate * 2170Sstevel@tonic-gate * The hash list is used to quickly find a page when the page's vnode and 2180Sstevel@tonic-gate * offset within the vnode are known. Each page that is hashed is 2190Sstevel@tonic-gate * connected via the `p_hash' field. The anchor for each hash is in the 2200Sstevel@tonic-gate * array `page_hash'. An array of mutexes, `ph_mutex', protects the 2210Sstevel@tonic-gate * lists anchored by page_hash[]. To either search or modify a given hash 2220Sstevel@tonic-gate * list, the appropriate mutex in the ph_mutex array must be held. 2230Sstevel@tonic-gate * 2240Sstevel@tonic-gate * The free list contains pages that are `free to be given away'. For 2250Sstevel@tonic-gate * efficiency reasons, pages on this list are placed in two catagories: 2260Sstevel@tonic-gate * pages that are still associated with a vnode, and pages that are not 2270Sstevel@tonic-gate * associated with a vnode. Free pages always have their `p_free' bit set, 2280Sstevel@tonic-gate * free pages that are still associated with a vnode also have their 2290Sstevel@tonic-gate * `p_age' bit set. Pages on the free list are connected via their 2300Sstevel@tonic-gate * `p_next' and `p_prev' fields. When a page is involved in some sort 2310Sstevel@tonic-gate * of i/o, it is not free and these fields may be used to link associated 2320Sstevel@tonic-gate * pages together. At the moment, the free list is protected by a 2330Sstevel@tonic-gate * single mutex `page_freelock'. The list of free pages still associated 2340Sstevel@tonic-gate * with a vnode is anchored by `page_cachelist' while other free pages 2350Sstevel@tonic-gate * are anchored in architecture dependent ways (to handle page coloring etc.). 2360Sstevel@tonic-gate * 2370Sstevel@tonic-gate * Pages associated with a given vnode appear on a list anchored in the 2380Sstevel@tonic-gate * vnode by the `v_pages' field. They are linked together with 2390Sstevel@tonic-gate * `p_vpnext' and `p_vpprev'. The field `p_offset' contains a page's 2400Sstevel@tonic-gate * offset within the vnode. The pages on this list are not kept in 2410Sstevel@tonic-gate * offset order. These lists, in a manner similar to the hash lists, 2420Sstevel@tonic-gate * are protected by an array of mutexes called `vph_hash'. Before 2430Sstevel@tonic-gate * searching or modifying this chain the appropriate mutex in the 2440Sstevel@tonic-gate * vph_hash[] array must be held. 2450Sstevel@tonic-gate * 2460Sstevel@tonic-gate * Again, each of the lists that a page can appear on is protected by a 2470Sstevel@tonic-gate * mutex. Before reading or writing any of the fields comprising the 2480Sstevel@tonic-gate * list, the appropriate lock must be held. These list locks should only 2490Sstevel@tonic-gate * be held for very short intervals. 2500Sstevel@tonic-gate * 2510Sstevel@tonic-gate * In addition to the list locks, each page structure contains a 2520Sstevel@tonic-gate * shared/exclusive lock that protects various fields within it. 2530Sstevel@tonic-gate * To modify one of these fields, the `p_selock' must be exclusively held. 2540Sstevel@tonic-gate * To read a field with a degree of certainty, the lock must be at least 2550Sstevel@tonic-gate * held shared. 2560Sstevel@tonic-gate * 2570Sstevel@tonic-gate * Removing a page structure from one of the lists requires holding 2580Sstevel@tonic-gate * the appropriate list lock and the page's p_selock. A page may be 2590Sstevel@tonic-gate * prevented from changing identity, being freed, or otherwise modified 2600Sstevel@tonic-gate * by acquiring p_selock shared. 2610Sstevel@tonic-gate * 2620Sstevel@tonic-gate * To avoid deadlocks, a strict locking protocol must be followed. Basically 2630Sstevel@tonic-gate * there are two cases: In the first case, the page structure in question 2640Sstevel@tonic-gate * is known ahead of time (e.g., when the page is to be added or removed 2650Sstevel@tonic-gate * from a list). In the second case, the page structure is not known and 2660Sstevel@tonic-gate * must be found by searching one of the lists. 2670Sstevel@tonic-gate * 2680Sstevel@tonic-gate * When adding or removing a known page to one of the lists, first the 2690Sstevel@tonic-gate * page must be exclusively locked (since at least one of its fields 2700Sstevel@tonic-gate * will be modified), second the lock protecting the list must be acquired, 2710Sstevel@tonic-gate * third the page inserted or deleted, and finally the list lock dropped. 2720Sstevel@tonic-gate * 2730Sstevel@tonic-gate * The more interesting case occures when the particular page structure 2740Sstevel@tonic-gate * is not known ahead of time. For example, when a call is made to 2750Sstevel@tonic-gate * page_lookup(), it is not known if a page with the desired (vnode and 2760Sstevel@tonic-gate * offset pair) identity exists. So the appropriate mutex in ph_mutex is 2770Sstevel@tonic-gate * acquired, the hash list searched, and if the desired page is found 2780Sstevel@tonic-gate * an attempt is made to lock it. The attempt to acquire p_selock must 2790Sstevel@tonic-gate * not block while the hash list lock is held. A deadlock could occure 2800Sstevel@tonic-gate * if some other process was trying to remove the page from the list. 2810Sstevel@tonic-gate * The removing process (following the above protocol) would have exclusively 2820Sstevel@tonic-gate * locked the page, and be spinning waiting to acquire the lock protecting 2830Sstevel@tonic-gate * the hash list. Since the searching process holds the hash list lock 2840Sstevel@tonic-gate * and is waiting to acquire the page lock, a deadlock occurs. 2850Sstevel@tonic-gate * 2860Sstevel@tonic-gate * The proper scheme to follow is: first, lock the appropriate list, 2870Sstevel@tonic-gate * search the list, and if the desired page is found either use 2880Sstevel@tonic-gate * page_trylock() (which will not block) or pass the address of the 2890Sstevel@tonic-gate * list lock to page_lock(). If page_lock() can not acquire the page's 2900Sstevel@tonic-gate * lock, it will drop the list lock before going to sleep. page_lock() 2910Sstevel@tonic-gate * returns a value to indicate if the list lock was dropped allowing the 2920Sstevel@tonic-gate * calling program to react appropriately (i.e., retry the operation). 2930Sstevel@tonic-gate * 2940Sstevel@tonic-gate * If the list lock was dropped before the attempt at locking the page 2950Sstevel@tonic-gate * was made, checks would have to be made to ensure that the page had 2960Sstevel@tonic-gate * not changed identity before its lock was obtained. This is because 2970Sstevel@tonic-gate * the interval between dropping the list lock and acquiring the page 2980Sstevel@tonic-gate * lock is indeterminate. 2990Sstevel@tonic-gate * 3000Sstevel@tonic-gate * In addition, when both a hash list lock (ph_mutex[]) and a vnode list 3010Sstevel@tonic-gate * lock (vph_mutex[]) are needed, the hash list lock must be acquired first. 3020Sstevel@tonic-gate * The routine page_hashin() is a good example of this sequence. 3030Sstevel@tonic-gate * This sequence is ASSERTed by checking that the vph_mutex[] is not held 3040Sstevel@tonic-gate * just before each acquisition of one of the mutexs in ph_mutex[]. 3050Sstevel@tonic-gate * 3060Sstevel@tonic-gate * So, as a quick summary: 3070Sstevel@tonic-gate * 3080Sstevel@tonic-gate * pse_mutex[]'s protect the p_selock and p_cv fields. 3090Sstevel@tonic-gate * 3100Sstevel@tonic-gate * p_selock protects the p_free, p_age, p_vnode, p_offset and p_hash, 3110Sstevel@tonic-gate * 3120Sstevel@tonic-gate * ph_mutex[]'s protect the page_hash[] array and its chains. 3130Sstevel@tonic-gate * 3140Sstevel@tonic-gate * vph_mutex[]'s protect the v_pages field and the vp page chains. 3150Sstevel@tonic-gate * 3160Sstevel@tonic-gate * First lock the page, then the hash chain, then the vnode chain. When 3170Sstevel@tonic-gate * this is not possible `trylocks' must be used. Sleeping while holding 3180Sstevel@tonic-gate * any of these mutexes (p_selock is not a mutex) is not allowed. 3190Sstevel@tonic-gate * 3200Sstevel@tonic-gate * 3210Sstevel@tonic-gate * field reading writing ordering 3220Sstevel@tonic-gate * ====================================================================== 3230Sstevel@tonic-gate * p_vnode p_selock(E,S) p_selock(E) 3240Sstevel@tonic-gate * p_offset 3250Sstevel@tonic-gate * p_free 3260Sstevel@tonic-gate * p_age 3270Sstevel@tonic-gate * ===================================================================== 3280Sstevel@tonic-gate * p_hash p_selock(E,S) p_selock(E) && p_selock, ph_mutex 3290Sstevel@tonic-gate * ph_mutex[] 3300Sstevel@tonic-gate * ===================================================================== 3310Sstevel@tonic-gate * p_vpnext p_selock(E,S) p_selock(E) && p_selock, vph_mutex 3320Sstevel@tonic-gate * p_vpprev vph_mutex[] 3330Sstevel@tonic-gate * ===================================================================== 3340Sstevel@tonic-gate * When the p_free bit is set: 3350Sstevel@tonic-gate * 3360Sstevel@tonic-gate * p_next p_selock(E,S) p_selock(E) && p_selock, 3370Sstevel@tonic-gate * p_prev page_freelock page_freelock 3380Sstevel@tonic-gate * 3390Sstevel@tonic-gate * When the p_free bit is not set: 3400Sstevel@tonic-gate * 3410Sstevel@tonic-gate * p_next p_selock(E,S) p_selock(E) && p_selock, p_iolock 3420Sstevel@tonic-gate * p_prev p_iolock 3430Sstevel@tonic-gate * ===================================================================== 3440Sstevel@tonic-gate * p_selock pse_mutex[] pse_mutex[] can`t acquire any 3450Sstevel@tonic-gate * p_cv other mutexes or 3460Sstevel@tonic-gate * sleep while holding 3470Sstevel@tonic-gate * this lock. 3480Sstevel@tonic-gate * ===================================================================== 3490Sstevel@tonic-gate * p_lckcnt p_selock(E,S) p_selock(E) && 3500Sstevel@tonic-gate * p_cowcnt page_llock 3510Sstevel@tonic-gate * ===================================================================== 3520Sstevel@tonic-gate * p_nrm hat layer lock hat layer lock 3530Sstevel@tonic-gate * p_mapping 3540Sstevel@tonic-gate * p_pagenum 3550Sstevel@tonic-gate * ===================================================================== 3560Sstevel@tonic-gate * 3570Sstevel@tonic-gate * where: 3580Sstevel@tonic-gate * E----> exclusive version of p_selock. 3590Sstevel@tonic-gate * S----> shared version of p_selock. 3600Sstevel@tonic-gate * 3610Sstevel@tonic-gate * 3620Sstevel@tonic-gate * Global data structures and variable: 3630Sstevel@tonic-gate * 3640Sstevel@tonic-gate * field reading writing ordering 3650Sstevel@tonic-gate * ===================================================================== 3660Sstevel@tonic-gate * page_hash[] ph_mutex[] ph_mutex[] can hold this lock 3670Sstevel@tonic-gate * before acquiring 3680Sstevel@tonic-gate * a vph_mutex or 3690Sstevel@tonic-gate * pse_mutex. 3700Sstevel@tonic-gate * ===================================================================== 3710Sstevel@tonic-gate * vp->v_pages vph_mutex[] vph_mutex[] can only acquire 3720Sstevel@tonic-gate * a pse_mutex while 3730Sstevel@tonic-gate * holding this lock. 3740Sstevel@tonic-gate * ===================================================================== 3750Sstevel@tonic-gate * page_cachelist page_freelock page_freelock can't acquire any 3760Sstevel@tonic-gate * page_freelist page_freelock page_freelock 3770Sstevel@tonic-gate * ===================================================================== 3780Sstevel@tonic-gate * freemem freemem_lock freemem_lock can't acquire any 3790Sstevel@tonic-gate * freemem_wait other mutexes while 3800Sstevel@tonic-gate * freemem_cv holding this mutex. 3810Sstevel@tonic-gate * ===================================================================== 3820Sstevel@tonic-gate * 3830Sstevel@tonic-gate * Page relocation, PG_NORELOC and P_NORELOC. 3840Sstevel@tonic-gate * 3850Sstevel@tonic-gate * Pages may be relocated using the page_relocate() interface. Relocation 3860Sstevel@tonic-gate * involves moving the contents and identity of a page to another, free page. 3870Sstevel@tonic-gate * To relocate a page, the SE_EXCL lock must be obtained. The way to prevent 3880Sstevel@tonic-gate * a page from being relocated is to hold the SE_SHARED lock (the SE_EXCL 3890Sstevel@tonic-gate * lock must not be held indefinitely). If the page is going to be held 3900Sstevel@tonic-gate * SE_SHARED indefinitely, then the PG_NORELOC hint should be passed 3910Sstevel@tonic-gate * to page_create_va so that pages that are prevented from being relocated 3920Sstevel@tonic-gate * can be managed differently by the platform specific layer. 3930Sstevel@tonic-gate * 3940Sstevel@tonic-gate * Pages locked in memory using page_pp_lock (p_lckcnt/p_cowcnt != 0) 3950Sstevel@tonic-gate * are guaranteed to be held in memory, but can still be relocated 3960Sstevel@tonic-gate * providing the SE_EXCL lock can be obtained. 3970Sstevel@tonic-gate * 3980Sstevel@tonic-gate * The P_NORELOC bit in the page_t.p_state field is provided for use by 3990Sstevel@tonic-gate * the platform specific code in managing pages when the PG_NORELOC 4000Sstevel@tonic-gate * hint is used. 4010Sstevel@tonic-gate * 4020Sstevel@tonic-gate * Memory delete and page locking. 4030Sstevel@tonic-gate * 4040Sstevel@tonic-gate * The set of all usable pages is managed using the global page list as 4050Sstevel@tonic-gate * implemented by the memseg structure defined below. When memory is added 4060Sstevel@tonic-gate * or deleted this list changes. Additions to this list guarantee that the 4070Sstevel@tonic-gate * list is never corrupt. In order to avoid the necessity of an additional 4080Sstevel@tonic-gate * lock to protect against failed accesses to the memseg being deleted and, 4090Sstevel@tonic-gate * more importantly, the page_ts, the memseg structure is never freed and the 4100Sstevel@tonic-gate * page_t virtual address space is remapped to a page (or pages) of 4110Sstevel@tonic-gate * zeros. If a page_t is manipulated while it is p_selock'd, or if it is 4120Sstevel@tonic-gate * locked indirectly via a hash or freelist lock, it is not possible for 4130Sstevel@tonic-gate * memory delete to collect the page and so that part of the page list is 4140Sstevel@tonic-gate * prevented from being deleted. If the page is referenced outside of one 4150Sstevel@tonic-gate * of these locks, it is possible for the page_t being referenced to be 4160Sstevel@tonic-gate * deleted. Examples of this are page_t pointers returned by 4170Sstevel@tonic-gate * page_numtopp_nolock, page_first and page_next. Providing the page_t 4180Sstevel@tonic-gate * is re-checked after taking the p_selock (for p_vnode != NULL), the 4190Sstevel@tonic-gate * remapping to the zero pages will be detected. 4200Sstevel@tonic-gate * 4210Sstevel@tonic-gate * 4220Sstevel@tonic-gate * Page size (p_szc field) and page locking. 4230Sstevel@tonic-gate * 4240Sstevel@tonic-gate * p_szc field of free pages is changed by free list manager under freelist 4250Sstevel@tonic-gate * locks and is of no concern to the rest of VM subsystem. 4260Sstevel@tonic-gate * 4270Sstevel@tonic-gate * p_szc changes of allocated anonymous (swapfs) can only be done only after 4280Sstevel@tonic-gate * exclusively locking all constituent pages and calling hat_pageunload() on 4290Sstevel@tonic-gate * each of them. To prevent p_szc changes of non free anonymous (swapfs) large 4300Sstevel@tonic-gate * pages it's enough to either lock SHARED any of constituent pages or prevent 4310Sstevel@tonic-gate * hat_pageunload() by holding hat level lock that protects mapping lists (this 4320Sstevel@tonic-gate * method is for hat code only) 4330Sstevel@tonic-gate * 4340Sstevel@tonic-gate * To increase (promote) p_szc of allocated non anonymous file system pages 4350Sstevel@tonic-gate * one has to first lock exclusively all involved constituent pages and call 4360Sstevel@tonic-gate * hat_pageunload() on each of them. To prevent p_szc promote it's enough to 4370Sstevel@tonic-gate * either lock SHARED any of constituent pages that will be needed to make a 4380Sstevel@tonic-gate * large page or prevent hat_pageunload() by holding hat level lock that 4390Sstevel@tonic-gate * protects mapping lists (this method is for hat code only). 4400Sstevel@tonic-gate * 4410Sstevel@tonic-gate * To decrease (demote) p_szc of an allocated non anonymous file system large 4420Sstevel@tonic-gate * page one can either use the same method as used for changeing p_szc of 4430Sstevel@tonic-gate * anonymous large pages or if it's not possible to lock all constituent pages 4440Sstevel@tonic-gate * exclusively a different method can be used. In the second method one only 4450Sstevel@tonic-gate * has to exclusively lock one of constituent pages but then one has to 4460Sstevel@tonic-gate * acquire further locks by calling page_szc_lock() and 4470Sstevel@tonic-gate * hat_page_demote(). hat_page_demote() acquires hat level locks and then 4480Sstevel@tonic-gate * demotes the page. This mechanism relies on the fact that any code that 4490Sstevel@tonic-gate * needs to prevent p_szc of a file system large page from changeing either 4500Sstevel@tonic-gate * locks all constituent large pages at least SHARED or locks some pages at 4510Sstevel@tonic-gate * least SHARED and calls page_szc_lock() or uses hat level page locks. 4520Sstevel@tonic-gate * Demotion using this method is implemented by page_demote_vp_pages(). 4530Sstevel@tonic-gate * Please see comments in front of page_demote_vp_pages(), hat_page_demote() 4540Sstevel@tonic-gate * and page_szc_lock() for more details. 4550Sstevel@tonic-gate * 4560Sstevel@tonic-gate * Lock order: p_selock, page_szc_lock, ph_mutex/vph_mutex/freelist, 4570Sstevel@tonic-gate * hat level locks. 4580Sstevel@tonic-gate */ 4590Sstevel@tonic-gate 4600Sstevel@tonic-gate typedef struct page { 4610Sstevel@tonic-gate u_offset_t p_offset; /* offset into vnode for this page */ 4620Sstevel@tonic-gate struct vnode *p_vnode; /* vnode that this page is named by */ 4630Sstevel@tonic-gate selock_t p_selock; /* shared/exclusive lock on the page */ 4640Sstevel@tonic-gate #if defined(_LP64) 4650Sstevel@tonic-gate int p_selockpad; /* pad for growing selock */ 4660Sstevel@tonic-gate #endif 4670Sstevel@tonic-gate struct page *p_hash; /* hash by [vnode, offset] */ 4680Sstevel@tonic-gate struct page *p_vpnext; /* next page in vnode list */ 4690Sstevel@tonic-gate struct page *p_vpprev; /* prev page in vnode list */ 4700Sstevel@tonic-gate struct page *p_next; /* next page in free/intrans lists */ 4710Sstevel@tonic-gate struct page *p_prev; /* prev page in free/intrans lists */ 4720Sstevel@tonic-gate ushort_t p_lckcnt; /* number of locks on page data */ 4730Sstevel@tonic-gate ushort_t p_cowcnt; /* number of copy on write lock */ 4740Sstevel@tonic-gate kcondvar_t p_cv; /* page struct's condition var */ 4750Sstevel@tonic-gate kcondvar_t p_io_cv; /* for iolock */ 4760Sstevel@tonic-gate uchar_t p_iolock_state; /* replaces p_iolock */ 4770Sstevel@tonic-gate volatile uchar_t p_szc; /* page size code */ 4780Sstevel@tonic-gate uchar_t p_fsdata; /* file system dependent byte */ 4790Sstevel@tonic-gate uchar_t p_state; /* p_free, p_noreloc */ 4800Sstevel@tonic-gate uchar_t p_nrm; /* non-cache, ref, mod readonly bits */ 4810Sstevel@tonic-gate #if defined(__sparc) 4820Sstevel@tonic-gate uchar_t p_vcolor; /* virtual color */ 4830Sstevel@tonic-gate #else 4840Sstevel@tonic-gate uchar_t p_embed; /* x86 - changes p_mapping & p_index */ 4850Sstevel@tonic-gate #endif 4860Sstevel@tonic-gate uchar_t p_index; /* MPSS mapping info. Not used on x86 */ 4870Sstevel@tonic-gate uchar_t p_toxic; /* page has an unrecoverable error */ 4880Sstevel@tonic-gate void *p_mapping; /* hat specific translation info */ 4890Sstevel@tonic-gate pfn_t p_pagenum; /* physical page number */ 4900Sstevel@tonic-gate 4910Sstevel@tonic-gate uint_t p_share; /* number of translations */ 4920Sstevel@tonic-gate #if defined(_LP64) 4930Sstevel@tonic-gate uint_t p_sharepad; /* pad for growing p_share */ 4940Sstevel@tonic-gate #endif 4950Sstevel@tonic-gate uint_t p_msresv_1; /* reserved for future use */ 4960Sstevel@tonic-gate #if defined(__sparc) 4970Sstevel@tonic-gate uint_t p_kpmref; /* number of kpm mapping sharers */ 4980Sstevel@tonic-gate struct kpme *p_kpmelist; /* kpm specific mapping info */ 4990Sstevel@tonic-gate #else 5000Sstevel@tonic-gate /* index of entry in p_map when p_embed is set */ 5010Sstevel@tonic-gate uint_t p_mlentry; 5020Sstevel@tonic-gate #endif 5030Sstevel@tonic-gate uint64_t p_msresv_2; /* page allocation debugging */ 5040Sstevel@tonic-gate } page_t; 5050Sstevel@tonic-gate 5060Sstevel@tonic-gate 5070Sstevel@tonic-gate typedef page_t devpage_t; 5080Sstevel@tonic-gate #define devpage page 5090Sstevel@tonic-gate 5100Sstevel@tonic-gate 5110Sstevel@tonic-gate /* 5120Sstevel@tonic-gate * Page hash table is a power-of-two in size, externally chained 5130Sstevel@tonic-gate * through the hash field. PAGE_HASHAVELEN is the average length 5140Sstevel@tonic-gate * desired for this chain, from which the size of the page_hash 5150Sstevel@tonic-gate * table is derived at boot time and stored in the kernel variable 5160Sstevel@tonic-gate * page_hashsz. In the hash function it is given by PAGE_HASHSZ. 5170Sstevel@tonic-gate * 5180Sstevel@tonic-gate * PAGE_HASH_FUNC returns an index into the page_hash[] array. This 5190Sstevel@tonic-gate * index is also used to derive the mutex that protects the chain. 5200Sstevel@tonic-gate * 5210Sstevel@tonic-gate * In constructing the hash function, first we dispose of unimportant bits 5220Sstevel@tonic-gate * (page offset from "off" and the low 3 bits of "vp" which are zero for 5230Sstevel@tonic-gate * struct alignment). Then shift and sum the remaining bits a couple times 5240Sstevel@tonic-gate * in order to get as many source bits from the two source values into the 5250Sstevel@tonic-gate * resulting hashed value. Note that this will perform quickly, since the 5260Sstevel@tonic-gate * shifting/summing are fast register to register operations with no additional 5270Sstevel@tonic-gate * memory references). 5280Sstevel@tonic-gate */ 5290Sstevel@tonic-gate #if NCPU < 4 5300Sstevel@tonic-gate #define PH_TABLE_SIZE 16 5310Sstevel@tonic-gate #define VP_SHIFT 7 5320Sstevel@tonic-gate #else 5330Sstevel@tonic-gate #define PH_TABLE_SIZE 128 5340Sstevel@tonic-gate #define VP_SHIFT 9 5350Sstevel@tonic-gate #endif 5360Sstevel@tonic-gate 5370Sstevel@tonic-gate /* 5380Sstevel@tonic-gate * The amount to use for the successive shifts in the hash function below. 5390Sstevel@tonic-gate * The actual value is LOG2(PH_TABLE_SIZE), so that as many bits as 5400Sstevel@tonic-gate * possible will filter thru PAGE_HASH_FUNC() and PAGE_HASH_MUTEX(). 5410Sstevel@tonic-gate */ 5420Sstevel@tonic-gate #define PH_SHIFT_SIZE (7) 5430Sstevel@tonic-gate 5440Sstevel@tonic-gate #define PAGE_HASHSZ page_hashsz 5450Sstevel@tonic-gate #define PAGE_HASHAVELEN 4 5460Sstevel@tonic-gate #define PAGE_HASH_FUNC(vp, off) \ 5470Sstevel@tonic-gate ((((uintptr_t)(off) >> PAGESHIFT) + \ 5480Sstevel@tonic-gate ((uintptr_t)(off) >> (PAGESHIFT + PH_SHIFT_SIZE)) + \ 5490Sstevel@tonic-gate ((uintptr_t)(vp) >> 3) + \ 5500Sstevel@tonic-gate ((uintptr_t)(vp) >> (3 + PH_SHIFT_SIZE)) + \ 5510Sstevel@tonic-gate ((uintptr_t)(vp) >> (3 + 2 * PH_SHIFT_SIZE))) & \ 5520Sstevel@tonic-gate (PAGE_HASHSZ - 1)) 5530Sstevel@tonic-gate #ifdef _KERNEL 5540Sstevel@tonic-gate 5550Sstevel@tonic-gate /* 5560Sstevel@tonic-gate * The page hash value is re-hashed to an index for the ph_mutex array. 5570Sstevel@tonic-gate * 5580Sstevel@tonic-gate * For 64 bit kernels, the mutex array is padded out to prevent false 5590Sstevel@tonic-gate * sharing of cache sub-blocks (64 bytes) of adjacent mutexes. 5600Sstevel@tonic-gate * 5610Sstevel@tonic-gate * For 32 bit kernels, we don't want to waste kernel address space with 5620Sstevel@tonic-gate * padding, so instead we rely on the hash function to introduce skew of 5630Sstevel@tonic-gate * adjacent vnode/offset indexes (the left shift part of the hash function). 5640Sstevel@tonic-gate * Since sizeof (kmutex_t) is 8, we shift an additional 3 to skew to a different 5650Sstevel@tonic-gate * 64 byte sub-block. 5660Sstevel@tonic-gate */ 5670Sstevel@tonic-gate typedef struct pad_mutex { 5680Sstevel@tonic-gate kmutex_t pad_mutex; 5690Sstevel@tonic-gate #ifdef _LP64 5700Sstevel@tonic-gate char pad_pad[64 - sizeof (kmutex_t)]; 5710Sstevel@tonic-gate #endif 5720Sstevel@tonic-gate } pad_mutex_t; 5730Sstevel@tonic-gate extern pad_mutex_t ph_mutex[]; 5740Sstevel@tonic-gate 5750Sstevel@tonic-gate #define PAGE_HASH_MUTEX(x) \ 5760Sstevel@tonic-gate &(ph_mutex[((x) + ((x) >> VP_SHIFT) + ((x) << 3)) & \ 5770Sstevel@tonic-gate (PH_TABLE_SIZE - 1)].pad_mutex) 5780Sstevel@tonic-gate 5790Sstevel@tonic-gate /* 5800Sstevel@tonic-gate * Flags used while creating pages. 5810Sstevel@tonic-gate */ 5820Sstevel@tonic-gate #define PG_EXCL 0x0001 5830Sstevel@tonic-gate #define PG_WAIT 0x0002 5840Sstevel@tonic-gate #define PG_PHYSCONTIG 0x0004 /* NOT SUPPORTED */ 5850Sstevel@tonic-gate #define PG_MATCH_COLOR 0x0008 /* SUPPORTED by free list routines */ 5860Sstevel@tonic-gate #define PG_NORELOC 0x0010 /* Non-relocatable alloc hint. */ 5870Sstevel@tonic-gate /* Page must be PP_ISNORELOC */ 5880Sstevel@tonic-gate #define PG_PANIC 0x0020 /* system will panic if alloc fails */ 5890Sstevel@tonic-gate #define PG_PUSHPAGE 0x0040 /* alloc may use reserve */ 5900Sstevel@tonic-gate 5910Sstevel@tonic-gate /* 5920Sstevel@tonic-gate * When p_selock has the SE_EWANTED bit set, threads waiting for SE_EXCL 5930Sstevel@tonic-gate * access are given priority over all other waiting threads. 5940Sstevel@tonic-gate */ 5950Sstevel@tonic-gate #define SE_EWANTED 0x40000000 5960Sstevel@tonic-gate #define PAGE_LOCKED(pp) (((pp)->p_selock & ~SE_EWANTED) != 0) 5970Sstevel@tonic-gate #define PAGE_SHARED(pp) (((pp)->p_selock & ~SE_EWANTED) > 0) 5980Sstevel@tonic-gate #define PAGE_EXCL(pp) ((pp)->p_selock < 0) 5990Sstevel@tonic-gate #define PAGE_LOCKED_SE(pp, se) \ 6000Sstevel@tonic-gate ((se) == SE_EXCL ? PAGE_EXCL(pp) : PAGE_SHARED(pp)) 6010Sstevel@tonic-gate 6020Sstevel@tonic-gate extern long page_hashsz; 6030Sstevel@tonic-gate extern page_t **page_hash; 6040Sstevel@tonic-gate 6050Sstevel@tonic-gate extern kmutex_t page_llock; /* page logical lock mutex */ 6060Sstevel@tonic-gate extern kmutex_t freemem_lock; /* freemem lock */ 6070Sstevel@tonic-gate 6080Sstevel@tonic-gate extern pgcnt_t total_pages; /* total pages in the system */ 6090Sstevel@tonic-gate 6100Sstevel@tonic-gate /* 6110Sstevel@tonic-gate * Variables controlling locking of physical memory. 6120Sstevel@tonic-gate */ 6130Sstevel@tonic-gate extern pgcnt_t pages_pp_maximum; /* tuning: lock + claim <= max */ 6140Sstevel@tonic-gate extern void init_pages_pp_maximum(void); 6150Sstevel@tonic-gate 6160Sstevel@tonic-gate struct lgrp; 6170Sstevel@tonic-gate 6180Sstevel@tonic-gate /* page_list_{add,sub} flags */ 6190Sstevel@tonic-gate 6200Sstevel@tonic-gate /* which list */ 6210Sstevel@tonic-gate #define PG_FREE_LIST 0x0001 6220Sstevel@tonic-gate #define PG_CACHE_LIST 0x0002 6230Sstevel@tonic-gate 6240Sstevel@tonic-gate /* where on list */ 6250Sstevel@tonic-gate #define PG_LIST_TAIL 0x0010 6260Sstevel@tonic-gate #define PG_LIST_HEAD 0x0020 6270Sstevel@tonic-gate 6280Sstevel@tonic-gate /* called from */ 6290Sstevel@tonic-gate #define PG_LIST_ISINIT 0x1000 6300Sstevel@tonic-gate #define PG_LIST_ISCAGE 0x2000 6310Sstevel@tonic-gate 6320Sstevel@tonic-gate /* 6330Sstevel@tonic-gate * Flags for setting the p_toxic flag when a page has errors 6340Sstevel@tonic-gate * These flags may be OR'ed into the p_toxic page flag to 6350Sstevel@tonic-gate * indicate that error(s) have occurred on a page, 6360Sstevel@tonic-gate * (see page_settoxic()). If both PAGE_IS_TOXIC and 6370Sstevel@tonic-gate * PAGE_IS_FAILING are set, PAGE_IS_FAILING takes precedence. 6380Sstevel@tonic-gate * 6390Sstevel@tonic-gate * When an error happens on a page, the trap handler sets 6400Sstevel@tonic-gate * PAGE_IS_FAULTY on the page to indicate that an error has been 6410Sstevel@tonic-gate * seen on the page. The error could be really a memory error or 6420Sstevel@tonic-gate * something else (like a datapath error). When it is determined 6430Sstevel@tonic-gate * that it is a memory error, the page is marked as PAGE_IS_TOXIC 6440Sstevel@tonic-gate * or PAGE_IS_FAILING depending on the type of error and then 6450Sstevel@tonic-gate * retired. 6460Sstevel@tonic-gate * 6470Sstevel@tonic-gate * We use the page's 'toxic' flag to determine whether the page 6480Sstevel@tonic-gate * has just got a single error - PAGE_IS_TOXIC - or is being 6490Sstevel@tonic-gate * retired due to multiple soft errors - PAGE_IS_FAILING. In 6500Sstevel@tonic-gate * page_free(), a page that has been marked PAGE_IS_FAILING will 6510Sstevel@tonic-gate * not be cleaned, it will always be retired. A page marked 6520Sstevel@tonic-gate * PAGE_IS_TOXIC is cleaned and is retired only if this attempt at 6530Sstevel@tonic-gate * cleaning fails. 6540Sstevel@tonic-gate * 6550Sstevel@tonic-gate * When a page has been successfully retired, we set PAGE_IS_RETIRED. 6560Sstevel@tonic-gate */ 6570Sstevel@tonic-gate #define PAGE_IS_OK 0x0 6580Sstevel@tonic-gate #define PAGE_IS_TOXIC 0x1 6590Sstevel@tonic-gate #define PAGE_IS_FAILING 0x2 6600Sstevel@tonic-gate #define PAGE_IS_RETIRED 0x4 6610Sstevel@tonic-gate #define PAGE_IS_FAULTY 0x8 6620Sstevel@tonic-gate 6630Sstevel@tonic-gate /* 6640Sstevel@tonic-gate * Page frame operations. 6650Sstevel@tonic-gate */ 6660Sstevel@tonic-gate page_t *page_lookup(struct vnode *, u_offset_t, se_t); 6670Sstevel@tonic-gate page_t *page_lookup_create(struct vnode *, u_offset_t, se_t, page_t *, 6680Sstevel@tonic-gate spgcnt_t *, int); 6690Sstevel@tonic-gate page_t *page_lookup_nowait(struct vnode *, u_offset_t, se_t); 6700Sstevel@tonic-gate page_t *page_find(struct vnode *, u_offset_t); 6710Sstevel@tonic-gate page_t *page_exists(struct vnode *, u_offset_t); 6720Sstevel@tonic-gate int page_exists_physcontig(vnode_t *, u_offset_t, uint_t, page_t *[]); 6730Sstevel@tonic-gate int page_exists_forreal(struct vnode *, u_offset_t, uint_t *); 6740Sstevel@tonic-gate void page_needfree(spgcnt_t); 6750Sstevel@tonic-gate page_t *page_create(struct vnode *, u_offset_t, size_t, uint_t); 6760Sstevel@tonic-gate int page_alloc_pages(struct seg *, caddr_t, page_t **, page_t **, 6770Sstevel@tonic-gate uint_t, int); 6780Sstevel@tonic-gate page_t *page_create_va_large(vnode_t *vp, u_offset_t off, size_t bytes, 6790Sstevel@tonic-gate uint_t flags, struct seg *seg, caddr_t vaddr, void *arg); 6800Sstevel@tonic-gate page_t *page_create_va(struct vnode *, u_offset_t, size_t, uint_t, 6810Sstevel@tonic-gate struct seg *, caddr_t); 6820Sstevel@tonic-gate int page_create_wait(size_t npages, uint_t flags); 6830Sstevel@tonic-gate void page_create_putback(ssize_t npages); 6840Sstevel@tonic-gate void page_free(page_t *, int); 6850Sstevel@tonic-gate void page_free_at_startup(page_t *); 6860Sstevel@tonic-gate void page_free_pages(page_t *); 6870Sstevel@tonic-gate void free_vp_pages(struct vnode *, u_offset_t, size_t); 6880Sstevel@tonic-gate int page_reclaim(page_t *, kmutex_t *); 6890Sstevel@tonic-gate void page_destroy(page_t *, int); 6900Sstevel@tonic-gate void page_destroy_pages(page_t *); 6910Sstevel@tonic-gate void page_destroy_free(page_t *); 6920Sstevel@tonic-gate void page_rename(page_t *, struct vnode *, u_offset_t); 6930Sstevel@tonic-gate int page_hashin(page_t *, struct vnode *, u_offset_t, kmutex_t *); 6940Sstevel@tonic-gate void page_hashout(page_t *, kmutex_t *); 6950Sstevel@tonic-gate int page_num_hashin(pfn_t, struct vnode *, u_offset_t); 6960Sstevel@tonic-gate void page_add(page_t **, page_t *); 6970Sstevel@tonic-gate void page_add_common(page_t **, page_t *); 6980Sstevel@tonic-gate void page_sub(page_t **, page_t *); 6990Sstevel@tonic-gate void page_sub_common(page_t **, page_t *); 7000Sstevel@tonic-gate page_t *page_get_freelist(struct vnode *, u_offset_t, struct seg *, 7010Sstevel@tonic-gate caddr_t, size_t, uint_t, struct lgrp *); 7020Sstevel@tonic-gate 7030Sstevel@tonic-gate page_t *page_get_cachelist(struct vnode *, u_offset_t, struct seg *, 7040Sstevel@tonic-gate caddr_t, uint_t, struct lgrp *); 7050Sstevel@tonic-gate void page_list_add(page_t *, int); 7060Sstevel@tonic-gate void page_boot_demote(page_t *); 7070Sstevel@tonic-gate void page_promote_size(page_t *, uint_t); 7080Sstevel@tonic-gate void page_list_add_pages(page_t *, int); 7090Sstevel@tonic-gate void page_list_sub(page_t *, int); 710*414Skchow void page_list_xfer(page_t *, int, int); 7110Sstevel@tonic-gate void page_list_break(page_t **, page_t **, size_t); 7120Sstevel@tonic-gate void page_list_concat(page_t **, page_t **); 7130Sstevel@tonic-gate void page_vpadd(page_t **, page_t *); 7140Sstevel@tonic-gate void page_vpsub(page_t **, page_t *); 7150Sstevel@tonic-gate int page_lock(page_t *, se_t, kmutex_t *, reclaim_t); 7160Sstevel@tonic-gate int page_lock_es(page_t *, se_t, kmutex_t *, reclaim_t, int); 7170Sstevel@tonic-gate void page_lock_clr_exclwanted(page_t *); 7180Sstevel@tonic-gate int page_trylock(page_t *, se_t); 7190Sstevel@tonic-gate int page_try_reclaim_lock(page_t *, se_t, int); 7200Sstevel@tonic-gate int page_tryupgrade(page_t *); 7210Sstevel@tonic-gate void page_downgrade(page_t *); 7220Sstevel@tonic-gate void page_unlock(page_t *); 7230Sstevel@tonic-gate void page_lock_delete(page_t *); 7240Sstevel@tonic-gate int page_pp_lock(page_t *, int, int); 7250Sstevel@tonic-gate void page_pp_unlock(page_t *, int, int); 7260Sstevel@tonic-gate int page_resv(pgcnt_t, uint_t); 7270Sstevel@tonic-gate void page_unresv(pgcnt_t); 7280Sstevel@tonic-gate void page_pp_useclaim(page_t *, page_t *, uint_t); 7290Sstevel@tonic-gate int page_addclaim(page_t *); 7300Sstevel@tonic-gate int page_subclaim(page_t *); 7310Sstevel@tonic-gate int page_addclaim_pages(page_t **); 7320Sstevel@tonic-gate int page_subclaim_pages(page_t **); 7330Sstevel@tonic-gate pfn_t page_pptonum(page_t *); 7340Sstevel@tonic-gate page_t *page_numtopp(pfn_t, se_t); 7350Sstevel@tonic-gate page_t *page_numtopp_noreclaim(pfn_t, se_t); 7360Sstevel@tonic-gate page_t *page_numtopp_nolock(pfn_t); 7370Sstevel@tonic-gate page_t *page_numtopp_nowait(pfn_t, se_t); 7380Sstevel@tonic-gate page_t *page_first(); 7390Sstevel@tonic-gate page_t *page_next(page_t *); 7400Sstevel@tonic-gate page_t *page_list_next(page_t *); 7410Sstevel@tonic-gate page_t *page_nextn(page_t *, ulong_t); 7420Sstevel@tonic-gate page_t *page_next_scan_init(void **); 7430Sstevel@tonic-gate page_t *page_next_scan_large(page_t *, ulong_t *, void **); 7440Sstevel@tonic-gate void prefetch_page_r(void *); 7450Sstevel@tonic-gate void ppcopy(page_t *, page_t *); 7460Sstevel@tonic-gate void page_relocate_hash(page_t *, page_t *); 7470Sstevel@tonic-gate void pagezero(page_t *, uint_t, uint_t); 7480Sstevel@tonic-gate void pagescrub(page_t *, uint_t, uint_t); 7490Sstevel@tonic-gate void page_io_lock(page_t *); 7500Sstevel@tonic-gate void page_io_unlock(page_t *); 7510Sstevel@tonic-gate int page_io_trylock(page_t *); 7520Sstevel@tonic-gate int page_iolock_assert(page_t *); 7530Sstevel@tonic-gate void page_iolock_init(page_t *); 7540Sstevel@tonic-gate pgcnt_t page_busy(int); 7550Sstevel@tonic-gate void page_lock_init(void); 7560Sstevel@tonic-gate ulong_t page_share_cnt(page_t *); 7570Sstevel@tonic-gate int page_isshared(page_t *); 7580Sstevel@tonic-gate int page_isfree(page_t *); 7590Sstevel@tonic-gate int page_isref(page_t *); 7600Sstevel@tonic-gate int page_ismod(page_t *); 7610Sstevel@tonic-gate int page_release(page_t *, int); 7620Sstevel@tonic-gate int page_retire(page_t *, uchar_t); 7630Sstevel@tonic-gate int page_istoxic(page_t *); 7640Sstevel@tonic-gate int page_isfailing(page_t *); 7650Sstevel@tonic-gate int page_isretired(page_t *); 7660Sstevel@tonic-gate int page_deteriorating(page_t *); 7670Sstevel@tonic-gate void page_settoxic(page_t *, uchar_t); 7680Sstevel@tonic-gate void page_clrtoxic(page_t *); 7690Sstevel@tonic-gate void page_clrtoxic_flag(page_t *, uchar_t); 7700Sstevel@tonic-gate int page_isfaulty(page_t *); 7710Sstevel@tonic-gate int page_mem_avail(pgcnt_t); 7720Sstevel@tonic-gate 7730Sstevel@tonic-gate void page_set_props(page_t *, uint_t); 7740Sstevel@tonic-gate void page_clr_all_props(page_t *); 7750Sstevel@tonic-gate 7760Sstevel@tonic-gate kmutex_t *page_vnode_mutex(struct vnode *); 7770Sstevel@tonic-gate kmutex_t *page_se_mutex(struct page *); 7780Sstevel@tonic-gate kmutex_t *page_szc_lock(struct page *); 7790Sstevel@tonic-gate int page_szc_lock_assert(struct page *pp); 7800Sstevel@tonic-gate 7810Sstevel@tonic-gate /* 7820Sstevel@tonic-gate * Page relocation interfaces. page_relocate() is generic. 7830Sstevel@tonic-gate * page_get_replacement_page() is provided by the PSM. 7840Sstevel@tonic-gate * page_free_replacement_page() is generic. 7850Sstevel@tonic-gate */ 7860Sstevel@tonic-gate int group_page_trylock(page_t *, se_t); 7870Sstevel@tonic-gate void group_page_unlock(page_t *); 7880Sstevel@tonic-gate int page_relocate(page_t **, page_t **, int, int, spgcnt_t *, struct lgrp *); 7890Sstevel@tonic-gate int do_page_relocate(page_t **, page_t **, int, spgcnt_t *, struct lgrp *); 7900Sstevel@tonic-gate page_t *page_get_replacement_page(page_t *, struct lgrp *, uint_t); 7910Sstevel@tonic-gate void page_free_replacement_page(page_t *); 7920Sstevel@tonic-gate int page_relocate_cage(page_t **, page_t **); 7930Sstevel@tonic-gate 7940Sstevel@tonic-gate int page_try_demote_pages(page_t *); 7950Sstevel@tonic-gate void page_demote_free_pages(page_t *); 7960Sstevel@tonic-gate 7970Sstevel@tonic-gate struct anon_map; 7980Sstevel@tonic-gate 7990Sstevel@tonic-gate void page_mark_migrate(struct seg *, caddr_t, size_t, struct anon_map *, 8000Sstevel@tonic-gate ulong_t, vnode_t *, u_offset_t, int); 8010Sstevel@tonic-gate void page_migrate(struct seg *, caddr_t, page_t **, pgcnt_t); 8020Sstevel@tonic-gate 8030Sstevel@tonic-gate /* 8040Sstevel@tonic-gate * Tell the PIM we are adding physical memory 8050Sstevel@tonic-gate */ 8060Sstevel@tonic-gate void add_physmem(page_t *, size_t, pfn_t); 8070Sstevel@tonic-gate void add_physmem_cb(page_t *, pfn_t); /* callback for page_t part */ 8080Sstevel@tonic-gate 8090Sstevel@tonic-gate /* 8100Sstevel@tonic-gate * hw_page_array[] is configured with hardware supported page sizes by 8110Sstevel@tonic-gate * platform specific code. 8120Sstevel@tonic-gate */ 8130Sstevel@tonic-gate typedef struct { 8140Sstevel@tonic-gate size_t hp_size; 8150Sstevel@tonic-gate uint_t hp_shift; 8160Sstevel@tonic-gate pgcnt_t hp_pgcnt; /* base pagesize cnt */ 8170Sstevel@tonic-gate } hw_pagesize_t; 8180Sstevel@tonic-gate 8190Sstevel@tonic-gate extern hw_pagesize_t hw_page_array[]; 8200Sstevel@tonic-gate extern uint_t page_colors, page_colors_mask; 8210Sstevel@tonic-gate extern uint_t page_coloring_shift; 8220Sstevel@tonic-gate extern int cpu_page_colors; 8230Sstevel@tonic-gate 8240Sstevel@tonic-gate uint_t page_num_pagesizes(void); 8250Sstevel@tonic-gate uint_t page_num_user_pagesizes(void); 8260Sstevel@tonic-gate size_t page_get_pagesize(uint_t); 8270Sstevel@tonic-gate size_t page_get_user_pagesize(uint_t n); 8280Sstevel@tonic-gate pgcnt_t page_get_pagecnt(uint_t); 8290Sstevel@tonic-gate uint_t page_get_shift(uint_t); 8300Sstevel@tonic-gate int page_szc(size_t); 83173Smec int page_szc_user_filtered(size_t); 8320Sstevel@tonic-gate 8330Sstevel@tonic-gate 8340Sstevel@tonic-gate /* page_get_replacement page flags */ 8350Sstevel@tonic-gate #define PGR_SAMESZC 0x1 /* only look for page size same as orig */ 8360Sstevel@tonic-gate #define PGR_NORELOC 0x2 /* allocate a P_NORELOC page */ 8370Sstevel@tonic-gate 8380Sstevel@tonic-gate #endif /* _KERNEL */ 8390Sstevel@tonic-gate 8400Sstevel@tonic-gate /* 8410Sstevel@tonic-gate * Constants used for the p_iolock_state 8420Sstevel@tonic-gate */ 8430Sstevel@tonic-gate #define PAGE_IO_INUSE 0x1 8440Sstevel@tonic-gate #define PAGE_IO_WANTED 0x2 8450Sstevel@tonic-gate 8460Sstevel@tonic-gate /* 8470Sstevel@tonic-gate * Constants used for page_release status 8480Sstevel@tonic-gate */ 8490Sstevel@tonic-gate #define PGREL_NOTREL 0x1 8500Sstevel@tonic-gate #define PGREL_CLEAN 0x2 8510Sstevel@tonic-gate #define PGREL_MOD 0x3 8520Sstevel@tonic-gate 8530Sstevel@tonic-gate /* 8540Sstevel@tonic-gate * The p_state field holds what used to be the p_age and p_free 8550Sstevel@tonic-gate * bits. These fields are protected by p_selock (see above). 8560Sstevel@tonic-gate */ 8570Sstevel@tonic-gate #define P_FREE 0x80 /* Page on free list */ 8580Sstevel@tonic-gate #define P_NORELOC 0x40 /* Page is non-relocatable */ 8590Sstevel@tonic-gate #define P_MIGRATE 0x20 /* Migrate page on next touch */ 8600Sstevel@tonic-gate #define P_SWAP 0x10 /* belongs to vnode that is V_ISSWAP */ 8610Sstevel@tonic-gate 8620Sstevel@tonic-gate #define PP_ISFREE(pp) ((pp)->p_state & P_FREE) 8630Sstevel@tonic-gate #define PP_ISAGED(pp) (((pp)->p_state & P_FREE) && \ 8640Sstevel@tonic-gate ((pp)->p_vnode == NULL)) 8650Sstevel@tonic-gate #define PP_ISNORELOC(pp) ((pp)->p_state & P_NORELOC) 8660Sstevel@tonic-gate #define PP_ISMIGRATE(pp) ((pp)->p_state & P_MIGRATE) 8670Sstevel@tonic-gate #define PP_ISSWAP(pp) ((pp)->p_state & P_SWAP) 8680Sstevel@tonic-gate 8690Sstevel@tonic-gate #define PP_SETFREE(pp) ((pp)->p_state = ((pp)->p_state & ~P_MIGRATE) \ 8700Sstevel@tonic-gate | P_FREE) 8710Sstevel@tonic-gate #define PP_SETAGED(pp) ASSERT(PP_ISAGED(pp)) 8720Sstevel@tonic-gate #define PP_SETNORELOC(pp) ((pp)->p_state |= P_NORELOC) 8730Sstevel@tonic-gate #define PP_SETMIGRATE(pp) ((pp)->p_state |= P_MIGRATE) 8740Sstevel@tonic-gate #define PP_SETSWAP(pp) ((pp)->p_state |= P_SWAP) 8750Sstevel@tonic-gate 8760Sstevel@tonic-gate #define PP_CLRFREE(pp) ((pp)->p_state &= ~P_FREE) 8770Sstevel@tonic-gate #define PP_CLRAGED(pp) ASSERT(!PP_ISAGED(pp)) 8780Sstevel@tonic-gate #define PP_CLRNORELOC(pp) ((pp)->p_state &= ~P_NORELOC) 8790Sstevel@tonic-gate #define PP_CLRMIGRATE(pp) ((pp)->p_state &= ~P_MIGRATE) 8800Sstevel@tonic-gate #define PP_CLRSWAP(pp) ((pp)->p_state &= ~P_SWAP) 8810Sstevel@tonic-gate 8820Sstevel@tonic-gate 8830Sstevel@tonic-gate 8840Sstevel@tonic-gate /* 8850Sstevel@tonic-gate * kpm large page description. 8860Sstevel@tonic-gate * The virtual address range of segkpm is divided into chunks of 8870Sstevel@tonic-gate * kpm_pgsz. Each chunk is controlled by a kpm_page_t. The ushort 8880Sstevel@tonic-gate * is sufficient for 2^^15 * PAGESIZE, so e.g. the maximum kpm_pgsz 8890Sstevel@tonic-gate * for 8K is 256M and 2G for 64K pages. It it kept as small as 8900Sstevel@tonic-gate * possible to save physical memory space. 8910Sstevel@tonic-gate * 8920Sstevel@tonic-gate * There are 2 segkpm mapping windows within in the virtual address 8930Sstevel@tonic-gate * space when we have to prevent VAC alias conflicts. The so called 8940Sstevel@tonic-gate * Alias window (mappings are always by PAGESIZE) is controlled by 8950Sstevel@tonic-gate * kp_refcnta. The regular window is controlled by kp_refcnt for the 8960Sstevel@tonic-gate * normal operation, which is to use the largest available pagesize. 8970Sstevel@tonic-gate * When VAC alias conflicts are present within a chunk in the regular 8980Sstevel@tonic-gate * window the large page mapping is broken up into smaller PAGESIZE 8990Sstevel@tonic-gate * mappings. kp_refcntc is used to control the pages that are invoked 9000Sstevel@tonic-gate * in the conflict and kp_refcnts holds the active mappings done 9010Sstevel@tonic-gate * with the small page size. In non vac conflict mode kp_refcntc is 9020Sstevel@tonic-gate * also used as "go" indication (-1) for the trap level tsbmiss 9030Sstevel@tonic-gate * handler. 9040Sstevel@tonic-gate */ 9050Sstevel@tonic-gate typedef struct kpm_page { 9060Sstevel@tonic-gate short kp_refcnt; /* pages mapped large */ 9070Sstevel@tonic-gate short kp_refcnta; /* pages mapped in Alias window */ 9080Sstevel@tonic-gate short kp_refcntc; /* TL-tsbmiss flag; #vac alias conflict pages */ 9090Sstevel@tonic-gate short kp_refcnts; /* vac alias: pages mapped small */ 9100Sstevel@tonic-gate } kpm_page_t; 9110Sstevel@tonic-gate 9120Sstevel@tonic-gate /* 9130Sstevel@tonic-gate * Note: khl_lock offset changes must be reflected in sfmmu_asm.s 9140Sstevel@tonic-gate */ 9150Sstevel@tonic-gate typedef struct kpm_hlk { 9160Sstevel@tonic-gate kmutex_t khl_mutex; /* kpm_page mutex */ 9170Sstevel@tonic-gate uint_t khl_lock; /* trap level tsbmiss handling */ 9180Sstevel@tonic-gate } kpm_hlk_t; 9190Sstevel@tonic-gate 9200Sstevel@tonic-gate /* 9210Sstevel@tonic-gate * kpm small page description. 9220Sstevel@tonic-gate * When kpm_pgsz is equal to PAGESIZE a smaller representation is used 9230Sstevel@tonic-gate * to save memory space. Alias range mappings and regular segkpm 9240Sstevel@tonic-gate * mappings are done in units of PAGESIZE and can share the mapping 9250Sstevel@tonic-gate * information and the mappings are always distinguishable by their 9260Sstevel@tonic-gate * virtual address. Other information neeeded for VAC conflict prevention 9270Sstevel@tonic-gate * is already available on a per page basis. There are basically 3 states 9280Sstevel@tonic-gate * a kpm_spage can have: not mapped (0), mapped in Alias range or virtually 9290Sstevel@tonic-gate * uncached (1) and mapped in the regular segkpm window (-1). The -1 value 9300Sstevel@tonic-gate * is also used as "go" indication for the segkpm trap level tsbmiss 9310Sstevel@tonic-gate * handler for small pages (value is kept the same as it is used for large 9320Sstevel@tonic-gate * mappings). 9330Sstevel@tonic-gate */ 9340Sstevel@tonic-gate typedef struct kpm_spage { 9350Sstevel@tonic-gate char kp_mapped; /* page mapped small */ 9360Sstevel@tonic-gate } kpm_spage_t; 9370Sstevel@tonic-gate 9380Sstevel@tonic-gate /* 9390Sstevel@tonic-gate * Note: kshl_lock offset changes must be reflected in sfmmu_asm.s 9400Sstevel@tonic-gate */ 9410Sstevel@tonic-gate typedef struct kpm_shlk { 9420Sstevel@tonic-gate uint_t kshl_lock; /* trap level tsbmiss handling */ 9430Sstevel@tonic-gate } kpm_shlk_t; 9440Sstevel@tonic-gate 9450Sstevel@tonic-gate /* 9460Sstevel@tonic-gate * Each segment of physical memory is described by a memseg struct. 9470Sstevel@tonic-gate * Within a segment, memory is considered contiguous. The members 9480Sstevel@tonic-gate * can be categorized as follows: 9490Sstevel@tonic-gate * . Platform independent: 9500Sstevel@tonic-gate * pages, epages, pages_base, pages_end, next, lnext. 9510Sstevel@tonic-gate * . 64bit only but platform independent: 9520Sstevel@tonic-gate * kpm_pbase, kpm_nkpmpgs, kpm_pages, kpm_spages. 9530Sstevel@tonic-gate * . Really platform or mmu specific: 9540Sstevel@tonic-gate * pagespa, epagespa, nextpa, kpm_pagespa. 9550Sstevel@tonic-gate * . Mixed: 9560Sstevel@tonic-gate * msegflags. 9570Sstevel@tonic-gate */ 9580Sstevel@tonic-gate struct memseg { 9590Sstevel@tonic-gate page_t *pages, *epages; /* [from, to] in page array */ 9600Sstevel@tonic-gate pfn_t pages_base, pages_end; /* [from, to] in page numbers */ 9610Sstevel@tonic-gate struct memseg *next; /* next segment in list */ 9620Sstevel@tonic-gate #if defined(__sparc) 9630Sstevel@tonic-gate struct memseg *lnext; /* next segment in deleted list */ 9640Sstevel@tonic-gate uint64_t pagespa, epagespa; /* [from, to] page array physical */ 9650Sstevel@tonic-gate uint64_t nextpa; /* physical next pointer */ 9660Sstevel@tonic-gate pfn_t kpm_pbase; /* start of kpm range */ 9670Sstevel@tonic-gate pgcnt_t kpm_nkpmpgs; /* # of kpm_pgsz pages */ 9680Sstevel@tonic-gate union _mseg_un { 9690Sstevel@tonic-gate kpm_page_t *kpm_lpgs; /* ptr to kpm_page array */ 9700Sstevel@tonic-gate kpm_spage_t *kpm_spgs; /* ptr to kpm_spage array */ 9710Sstevel@tonic-gate } mseg_un; 9720Sstevel@tonic-gate uint64_t kpm_pagespa; /* physical ptr to kpm (s)pages array */ 9730Sstevel@tonic-gate uint_t msegflags; /* memseg flags */ 9740Sstevel@tonic-gate #endif /* __sparc */ 9750Sstevel@tonic-gate }; 9760Sstevel@tonic-gate 9770Sstevel@tonic-gate /* memseg union aliases */ 9780Sstevel@tonic-gate #define kpm_pages mseg_un.kpm_lpgs 9790Sstevel@tonic-gate #define kpm_spages mseg_un.kpm_spgs 9800Sstevel@tonic-gate 9810Sstevel@tonic-gate /* msegflags */ 9820Sstevel@tonic-gate #define MEMSEG_DYNAMIC 0x1 /* DR: memory was added dynamically */ 9830Sstevel@tonic-gate 9840Sstevel@tonic-gate /* memseg support macros */ 9850Sstevel@tonic-gate #define MSEG_NPAGES(SEG) ((SEG)->pages_end - (SEG)->pages_base) 9860Sstevel@tonic-gate 9870Sstevel@tonic-gate /* memseg hash */ 9880Sstevel@tonic-gate #define MEM_HASH_SHIFT 0x9 9890Sstevel@tonic-gate #define N_MEM_SLOTS 0x200 /* must be a power of 2 */ 9900Sstevel@tonic-gate #define MEMSEG_PFN_HASH(pfn) (((pfn)/mhash_per_slot) & (N_MEM_SLOTS - 1)) 9910Sstevel@tonic-gate 9920Sstevel@tonic-gate /* memseg externals */ 9930Sstevel@tonic-gate extern struct memseg *memsegs; /* list of memory segments */ 9940Sstevel@tonic-gate extern ulong_t mhash_per_slot; 9950Sstevel@tonic-gate extern uint64_t memsegspa; /* memsegs as physical address */ 9960Sstevel@tonic-gate 9970Sstevel@tonic-gate void build_pfn_hash(); 9980Sstevel@tonic-gate extern struct memseg *page_numtomemseg_nolock(pfn_t pfnum); 9990Sstevel@tonic-gate 10000Sstevel@tonic-gate 10010Sstevel@tonic-gate #ifdef __cplusplus 10020Sstevel@tonic-gate } 10030Sstevel@tonic-gate #endif 10040Sstevel@tonic-gate 10050Sstevel@tonic-gate #endif /* _VM_PAGE_H */ 1006