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uvm_page.h revision 1.98
      1  1.98        ad /*	$NetBSD: uvm_page.h,v 1.98 2020/02/23 15:46:43 ad Exp $	*/
      2   1.1       mrg 
      3  1.26       chs /*
      4   1.1       mrg  * Copyright (c) 1997 Charles D. Cranor and Washington University.
      5  1.26       chs  * Copyright (c) 1991, 1993, The Regents of the University of California.
      6   1.1       mrg  *
      7   1.1       mrg  * All rights reserved.
      8   1.1       mrg  *
      9   1.1       mrg  * This code is derived from software contributed to Berkeley by
     10   1.1       mrg  * The Mach Operating System project at Carnegie-Mellon University.
     11   1.1       mrg  *
     12   1.1       mrg  * Redistribution and use in source and binary forms, with or without
     13   1.1       mrg  * modification, are permitted provided that the following conditions
     14   1.1       mrg  * are met:
     15   1.1       mrg  * 1. Redistributions of source code must retain the above copyright
     16   1.1       mrg  *    notice, this list of conditions and the following disclaimer.
     17   1.1       mrg  * 2. Redistributions in binary form must reproduce the above copyright
     18   1.1       mrg  *    notice, this list of conditions and the following disclaimer in the
     19   1.1       mrg  *    documentation and/or other materials provided with the distribution.
     20  1.71     chuck  * 3. Neither the name of the University nor the names of its contributors
     21   1.1       mrg  *    may be used to endorse or promote products derived from this software
     22   1.1       mrg  *    without specific prior written permission.
     23   1.1       mrg  *
     24   1.1       mrg  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     25   1.1       mrg  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     26   1.1       mrg  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     27   1.1       mrg  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     28   1.1       mrg  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     29   1.1       mrg  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     30   1.1       mrg  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     31   1.1       mrg  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     32   1.1       mrg  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     33   1.1       mrg  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     34   1.1       mrg  * SUCH DAMAGE.
     35   1.1       mrg  *
     36   1.1       mrg  *	@(#)vm_page.h   7.3 (Berkeley) 4/21/91
     37   1.3       mrg  * from: Id: uvm_page.h,v 1.1.2.6 1998/02/04 02:31:42 chuck Exp
     38   1.1       mrg  *
     39   1.1       mrg  *
     40   1.1       mrg  * Copyright (c) 1987, 1990 Carnegie-Mellon University.
     41   1.1       mrg  * All rights reserved.
     42  1.26       chs  *
     43   1.1       mrg  * Permission to use, copy, modify and distribute this software and
     44   1.1       mrg  * its documentation is hereby granted, provided that both the copyright
     45   1.1       mrg  * notice and this permission notice appear in all copies of the
     46   1.1       mrg  * software, derivative works or modified versions, and any portions
     47   1.1       mrg  * thereof, and that both notices appear in supporting documentation.
     48  1.26       chs  *
     49  1.26       chs  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
     50  1.26       chs  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
     51   1.1       mrg  * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
     52  1.26       chs  *
     53   1.1       mrg  * Carnegie Mellon requests users of this software to return to
     54   1.1       mrg  *
     55   1.1       mrg  *  Software Distribution Coordinator  or  Software.Distribution (at) CS.CMU.EDU
     56   1.1       mrg  *  School of Computer Science
     57   1.1       mrg  *  Carnegie Mellon University
     58   1.1       mrg  *  Pittsburgh PA 15213-3890
     59   1.1       mrg  *
     60   1.1       mrg  * any improvements or extensions that they make and grant Carnegie the
     61   1.1       mrg  * rights to redistribute these changes.
     62   1.1       mrg  */
     63   1.1       mrg 
     64   1.4     perry #ifndef _UVM_UVM_PAGE_H_
     65   1.4     perry #define _UVM_UVM_PAGE_H_
     66   1.4     perry 
     67  1.74     rmind #include <uvm/uvm_extern.h>
     68  1.74     rmind #include <uvm/uvm_pglist.h>
     69   1.1       mrg 
     70  1.16       mrg /*
     71  1.74     rmind  * Management of resident (logical) pages.
     72  1.16       mrg  *
     73  1.74     rmind  * Each resident page has a vm_page structure, indexed by page number.
     74  1.74     rmind  * There are several lists in the structure:
     75  1.16       mrg  *
     76  1.74     rmind  * - A red-black tree rooted with the containing object is used to
     77  1.74     rmind  *   quickly perform object+offset lookups.
     78  1.74     rmind  * - A list of all pages for a given object, for a quick deactivation
     79  1.74     rmind  *   at a time of deallocation.
     80  1.74     rmind  * - An ordered list of pages due for pageout.
     81  1.74     rmind  *
     82  1.74     rmind  * In addition, the structure contains the object and offset to which
     83  1.74     rmind  * this page belongs (for pageout) and sundry status bits.
     84  1.74     rmind  *
     85  1.74     rmind  * Note that the page structure has no lock of its own.  The page is
     86  1.74     rmind  * generally protected by its owner's lock (UVM object or amap/anon).
     87  1.74     rmind  * It should be noted that UVM has to serialize pmap(9) operations on
     88  1.74     rmind  * the managed pages, e.g. for pmap_enter() calls.  Hence, the lock
     89  1.74     rmind  * order is as follows:
     90  1.74     rmind  *
     91  1.74     rmind  *	[vmpage-owner-lock] ->
     92  1.74     rmind  *		any pmap locks (e.g. PV hash lock)
     93  1.74     rmind  *
     94  1.74     rmind  * Since the kernel is always self-consistent, no serialization is
     95  1.74     rmind  * required for unmanaged mappings, e.g. for pmap_kenter_pa() calls.
     96  1.74     rmind  *
     97  1.74     rmind  * Field markings and the corresponding locks:
     98  1.74     rmind  *
     99  1.77  riastrad  * f:	free page queue lock, uvm_fpageqlock
    100  1.77  riastrad  * o:	page owner (uvm_object::vmobjlock, vm_amap::am_lock, vm_anon::an_lock)
    101  1.85        ad  * i:	vm_page::interlock
    102  1.85        ad  *        => flags set and cleared only with o&i held can
    103  1.85        ad  *           safely be tested for with only o held.
    104  1.85        ad  * o,i:	o|i for read, o&i for write (depends on context - if could be loaned)
    105  1.85        ad  *	  => see uvm_loan.c
    106  1.77  riastrad  * w:	wired page queue or uvm_pglistalloc:
    107  1.85        ad  *	  => wired page queue: o&i to change, stable from wire to unwire
    108  1.77  riastrad  *		XXX What about concurrent or nested wire?
    109  1.77  riastrad  *	  => uvm_pglistalloc: owned by caller
    110  1.74     rmind  * ?:	locked by pmap or assumed page owner's lock
    111  1.85        ad  * p:	locked by pagedaemon policy module (pdpolicy)
    112  1.85        ad  * c:	cpu private
    113  1.85        ad  * s:	stable, does not change
    114  1.16       mrg  *
    115  1.91        ad  * UVM and pmap(9) may use uvm_page_owner_locked_p() to assert whether the
    116  1.74     rmind  * page owner's lock is acquired.
    117  1.77  riastrad  *
    118  1.80  riastrad  * A page can have one of four identities:
    119  1.77  riastrad  *
    120  1.77  riastrad  * o free
    121  1.77  riastrad  *   => pageq.list is entry on global free page queue
    122  1.77  riastrad  *   => uanon is unused (or (void *)0xdeadbeef for DEBUG)
    123  1.77  riastrad  *   => uobject is unused (or (void *)0xdeadbeef for DEBUG)
    124  1.85        ad  *   => PG_FREE is set in flags
    125  1.77  riastrad  * o owned by a uvm_object
    126  1.77  riastrad  *   => pageq.queue is entry on wired page queue, if any
    127  1.78  riastrad  *   => uanon is NULL or the vm_anon to which it has been O->A loaned
    128  1.77  riastrad  *   => uobject is owner
    129  1.77  riastrad  * o owned by a vm_anon
    130  1.77  riastrad  *   => pageq is unused (XXX correct?)
    131  1.77  riastrad  *   => uanon is owner
    132  1.77  riastrad  *   => uobject is NULL
    133  1.85        ad  *   => PG_ANON is set in flags
    134  1.77  riastrad  * o allocated by uvm_pglistalloc
    135  1.77  riastrad  *   => pageq.queue is entry on resulting pglist, owned by caller
    136  1.77  riastrad  *   => uanon is unused
    137  1.77  riastrad  *   => uobject is unused
    138  1.77  riastrad  *
    139  1.77  riastrad  * The following transitions are allowed:
    140  1.77  riastrad  *
    141  1.77  riastrad  * - uvm_pagealloc: free -> owned by a uvm_object/vm_anon
    142  1.77  riastrad  * - uvm_pagefree: owned by a uvm_object/vm_anon -> free
    143  1.77  riastrad  * - uvm_pglistalloc: free -> allocated by uvm_pglistalloc
    144  1.77  riastrad  * - uvm_pglistfree: allocated by uvm_pglistalloc -> free
    145  1.92        ad  *
    146  1.92        ad  * On the ordering of fields:
    147  1.92        ad  *
    148  1.92        ad  * The fields most heavily used by the page allocator and uvmpdpol are
    149  1.92        ad  * clustered together at the start of the structure, so that while under
    150  1.92        ad  * global lock it's more likely that only one cache line for each page need
    151  1.92        ad  * be touched.
    152  1.16       mrg  */
    153  1.16       mrg 
    154  1.16       mrg struct vm_page {
    155  1.54        ad 	union {
    156  1.77  riastrad 		TAILQ_ENTRY(vm_page) queue;	/* w: wired page queue
    157  1.77  riastrad 						 * or uvm_pglistalloc output */
    158  1.77  riastrad 		LIST_ENTRY(vm_page) list;	/* f: global free page queue */
    159  1.77  riastrad 	} pageq;
    160  1.90        ad 	TAILQ_ENTRY(vm_page)	pdqueue;	/* p: pagedaemon queue */
    161  1.92        ad 	kmutex_t		interlock;	/* s: lock on identity */
    162  1.92        ad 	uint32_t		pqflags;	/* i: pagedaemon flags */
    163  1.96        ad 	uint32_t		flags;		/* o: object flags */
    164  1.92        ad 	paddr_t			phys_addr;	/* o: physical address of pg */
    165  1.85        ad 	uint32_t		loan_count;	/* o,i: num. active loans */
    166  1.85        ad 	uint32_t		wire_count;	/* o,i: wired down map refs */
    167  1.92        ad 	struct vm_anon		*uanon;		/* o,i: anon */
    168  1.92        ad 	struct uvm_object	*uobject;	/* o,i: object */
    169  1.92        ad 	voff_t			offset;		/* o: offset into object */
    170  1.21   thorpej 
    171  1.22   thorpej #ifdef __HAVE_VM_PAGE_MD
    172  1.74     rmind 	struct vm_page_md	mdpage;		/* ?: pmap-specific data */
    173  1.22   thorpej #endif
    174  1.21   thorpej 
    175  1.16       mrg #if defined(UVM_PAGE_TRKOWN)
    176  1.18       chs 	/* debugging fields to track page ownership */
    177  1.18       chs 	pid_t			owner;		/* proc that set PG_BUSY */
    178  1.48  perseant 	lwpid_t			lowner;		/* lwp that set PG_BUSY */
    179  1.40       chs 	const char		*owner_tag;	/* why it was set busy */
    180  1.16       mrg #endif
    181  1.16       mrg };
    182  1.16       mrg 
    183  1.16       mrg /*
    184  1.97        ad  * Overview of UVM page flags, stored in pg->flags.
    185  1.75     rmind  *
    186  1.75     rmind  * Locking notes:
    187  1.75     rmind  *
    188  1.77  riastrad  * PG_, struct vm_page::flags	=> locked by owner
    189  1.85        ad  * PG_AOBJ			=> additionally locked by vm_page::interlock
    190  1.85        ad  * PG_ANON			=> additionally locked by vm_page::interlock
    191  1.85        ad  * PG_FREE			=> additionally locked by uvm_fpageqlock
    192  1.85        ad  *				   for uvm_pglistalloc()
    193  1.75     rmind  *
    194  1.75     rmind  * Flag descriptions:
    195  1.75     rmind  *
    196  1.96        ad  * PG_CLEAN:
    197  1.96        ad  *	Page is known clean.
    198  1.96        ad  *	The contents of the page is consistent with its backing store.
    199  1.96        ad  *
    200  1.96        ad  * PG_DIRTY:
    201  1.96        ad  *	Page is known dirty.
    202  1.96        ad  *	To avoid losing data, the contents of the page should be written
    203  1.96        ad  *	back to the backing store before freeing the page.
    204  1.96        ad  *
    205  1.75     rmind  * PG_BUSY:
    206  1.75     rmind  *	Page is long-term locked, usually because of I/O (transfer from the
    207  1.75     rmind  *	page memory to the backing store) is in progress.  LWP attempting
    208  1.75     rmind  *	to access the page shall set PG_WANTED and wait.
    209  1.75     rmind  *
    210  1.75     rmind  * PG_WANTED:
    211  1.75     rmind  *	Indicates that the page, which is currently PG_BUSY, is wanted by
    212  1.75     rmind  *	some other LWP.  The page owner (i.e. LWP which set PG_BUSY) is
    213  1.75     rmind  *	responsible to clear both flags and wake up any waiters once it has
    214  1.75     rmind  *	released the long-term lock (PG_BUSY).
    215  1.75     rmind  *
    216  1.96        ad  * PG_PAGEOUT:
    217  1.96        ad  *	Indicates that the page is being paged-out in preparation for
    218  1.96        ad  *	being freed.
    219  1.96        ad  *
    220  1.75     rmind  * PG_RELEASED:
    221  1.75     rmind  *	Indicates that the page, which is currently PG_BUSY, should be freed
    222  1.75     rmind  *	after the release of long-term lock.  It is responsibility of the
    223  1.75     rmind  *	owning LWP (i.e. which set PG_BUSY) to do it.
    224  1.75     rmind  *
    225  1.75     rmind  * PG_FAKE:
    226  1.75     rmind  *	Page has been allocated, but not yet initialised.  The flag is used
    227  1.75     rmind  *	to avoid overwriting of valid data, e.g. to prevent read from the
    228  1.75     rmind  *	backing store when in-core data is newer.
    229  1.75     rmind  *
    230  1.75     rmind  * PG_RDONLY:
    231  1.75     rmind  *	Indicates that the page must be mapped read-only.
    232  1.75     rmind  *
    233  1.75     rmind  * PG_ZERO:
    234  1.75     rmind  *	Indicates that the page has been pre-zeroed.  This flag is only
    235  1.75     rmind  *	set when the page is not in the queues and is cleared when the
    236  1.75     rmind  *	page is placed on the free list.
    237  1.75     rmind  *
    238  1.75     rmind  * PG_MARKER:
    239  1.96        ad  *	Dummy marker page, generally used for list traversal.
    240  1.96        ad  */
    241  1.96        ad 
    242  1.96        ad /*
    243  1.96        ad  * if you want to renumber PG_CLEAN and PG_DIRTY, check __CTASSERTs in
    244  1.96        ad  * uvm_page_status.c first.
    245  1.75     rmind  */
    246  1.75     rmind 
    247  1.96        ad #define	PG_CLEAN	0x00000001	/* page is known clean */
    248  1.96        ad #define	PG_DIRTY	0x00000002	/* page is known dirty */
    249  1.96        ad #define	PG_BUSY		0x00000004	/* page is locked */
    250  1.96        ad #define	PG_WANTED	0x00000008	/* someone is waiting for page */
    251  1.96        ad #define	PG_PAGEOUT	0x00000010	/* page to be freed for pagedaemon */
    252  1.96        ad #define	PG_RELEASED	0x00000020	/* page to be freed when unbusied */
    253  1.96        ad #define	PG_FAKE		0x00000040	/* page is not yet initialized */
    254  1.96        ad #define	PG_RDONLY	0x00000080	/* page must be mapped read-only */
    255  1.96        ad #define	PG_ZERO		0x00000100	/* page is pre-zero'd */
    256  1.96        ad #define	PG_TABLED	0x00000200	/* page is tabled in object */
    257  1.96        ad #define	PG_AOBJ		0x00000400	/* page is part of an anonymous
    258  1.85        ad 					   uvm_object */
    259  1.96        ad #define	PG_ANON		0x00000800	/* page is part of an anon, rather
    260  1.85        ad 					   than an uvm_object */
    261  1.96        ad #define	PG_FILE		0x00001000	/* file backed (non-anonymous) */
    262  1.96        ad #define	PG_READAHEAD	0x00002000	/* read-ahead but not "hit" yet */
    263  1.96        ad #define	PG_FREE		0x00004000	/* page is on free list */
    264  1.96        ad #define	PG_MARKER	0x00008000	/* dummy marker page */
    265  1.96        ad #define	PG_PAGER1	0x00010000	/* pager-specific flag */
    266  1.96        ad 
    267  1.96        ad #define	PG_STAT		(PG_ANON|PG_AOBJ|PG_FILE)
    268  1.96        ad #define	PG_SWAPBACKED	(PG_ANON|PG_AOBJ)
    269  1.16       mrg 
    270  1.46      yamt #define	UVM_PGFLAGBITS \
    271  1.96        ad 	"\20\1CLEAN\2DIRTY\3BUSY\4WANTED" \
    272  1.96        ad 	"\5PAGEOUT\6RELEASED\7FAKE\10RDONLY" \
    273  1.96        ad 	"\11ZERO\12TABLED\13AOBJ\14ANON" \
    274  1.96        ad 	"\15FILE\16READAHEAD\17FREE\20MARKER" \
    275  1.96        ad 	"\21PAGER1"
    276  1.16       mrg 
    277  1.16       mrg /*
    278  1.97        ad  * Flags stored in pg->pqflags, which is protected by pg->interlock.
    279  1.93        ad  *
    280  1.97        ad  * PQ_PRIVATE is for uvmpdpol to do whatever it wants with.
    281  1.93        ad  */
    282  1.93        ad 
    283  1.93        ad #define	PQ_INTENT_A		0x00000000	/* intend activation */
    284  1.93        ad #define	PQ_INTENT_I		0x00000001	/* intend deactivation */
    285  1.93        ad #define	PQ_INTENT_E		0x00000002	/* intend enqueue */
    286  1.93        ad #define	PQ_INTENT_D		0x00000003	/* intend dequeue */
    287  1.93        ad #define	PQ_INTENT_MASK		0x00000003	/* mask of intended state */
    288  1.93        ad #define	PQ_INTENT_SET		0x00000004	/* not realized yet */
    289  1.93        ad #define	PQ_INTENT_QUEUED	0x00000008	/* queued for processing */
    290  1.97        ad #define	PQ_PRIVATE		0x00000ff0	/* private for pdpolicy */
    291  1.97        ad 
    292  1.97        ad #define	UVM_PQFLAGBITS \
    293  1.97        ad 	"\20\1INTENT_0\2INTENT_1\3INTENT_SET\4INTENT_QUEUED" \
    294  1.97        ad 	"\5PRIVATE1\6PRIVATE2\7PRIVATE3\10PRIVATE4" \
    295  1.97        ad 	"\11PRIVATE5\12PRIVATE6\13PRIVATE7\14PRIVATE8"
    296  1.93        ad 
    297  1.93        ad /*
    298  1.16       mrg  * physical memory layout structure
    299  1.16       mrg  *
    300  1.16       mrg  * MD vmparam.h must #define:
    301  1.16       mrg  *   VM_PHYSEG_MAX = max number of physical memory segments we support
    302  1.16       mrg  *		   (if this is "1" then we revert to a "contig" case)
    303  1.16       mrg  *   VM_PHYSSEG_STRAT: memory sort/search options (for VM_PHYSEG_MAX > 1)
    304  1.16       mrg  * 	- VM_PSTRAT_RANDOM:   linear search (random order)
    305  1.16       mrg  *	- VM_PSTRAT_BSEARCH:  binary search (sorted by address)
    306  1.16       mrg  *	- VM_PSTRAT_BIGFIRST: linear search (sorted by largest segment first)
    307  1.16       mrg  *      - others?
    308  1.17       mrg  *   XXXCDC: eventually we should purge all left-over global variables...
    309  1.16       mrg  */
    310  1.16       mrg #define VM_PSTRAT_RANDOM	1
    311  1.16       mrg #define VM_PSTRAT_BSEARCH	2
    312  1.16       mrg #define VM_PSTRAT_BIGFIRST	3
    313  1.16       mrg 
    314  1.13   thorpej #ifdef _KERNEL
    315  1.13   thorpej 
    316   1.1       mrg /*
    317  1.15   thorpej  * globals
    318  1.15   thorpej  */
    319  1.15   thorpej 
    320  1.47   thorpej extern bool vm_page_zero_enable;
    321  1.15   thorpej 
    322  1.15   thorpej /*
    323   1.8     chuck  * prototypes: the following prototypes define the interface to pages
    324   1.1       mrg  */
    325   1.1       mrg 
    326  1.37  junyoung void uvm_page_init(vaddr_t *, vaddr_t *);
    327   1.1       mrg #if defined(UVM_PAGE_TRKOWN)
    328  1.40       chs void uvm_page_own(struct vm_page *, const char *);
    329   1.1       mrg #endif
    330   1.8     chuck #if !defined(PMAP_STEAL_MEMORY)
    331  1.47   thorpej bool uvm_page_physget(paddr_t *);
    332   1.8     chuck #endif
    333  1.37  junyoung void uvm_page_recolor(int);
    334  1.89        ad void uvm_page_rebucket(void);
    335  1.37  junyoung void uvm_pageidlezero(void);
    336  1.37  junyoung 
    337  1.43      yamt void uvm_pageactivate(struct vm_page *);
    338  1.37  junyoung vaddr_t uvm_pageboot_alloc(vsize_t);
    339  1.43      yamt void uvm_pagecopy(struct vm_page *, struct vm_page *);
    340  1.43      yamt void uvm_pagedeactivate(struct vm_page *);
    341  1.43      yamt void uvm_pagedequeue(struct vm_page *);
    342  1.46      yamt void uvm_pageenqueue(struct vm_page *);
    343  1.37  junyoung void uvm_pagefree(struct vm_page *);
    344  1.93        ad void uvm_pagelock(struct vm_page *);
    345  1.93        ad void uvm_pagelock2(struct vm_page *, struct vm_page *);
    346  1.93        ad void uvm_pageunlock(struct vm_page *);
    347  1.93        ad void uvm_pageunlock2(struct vm_page *, struct vm_page *);
    348  1.37  junyoung void uvm_page_unbusy(struct vm_page **, int);
    349  1.43      yamt struct vm_page *uvm_pagelookup(struct uvm_object *, voff_t);
    350  1.43      yamt void uvm_pageunwire(struct vm_page *);
    351  1.43      yamt void uvm_pagewire(struct vm_page *);
    352  1.43      yamt void uvm_pagezero(struct vm_page *);
    353  1.57   thorpej bool uvm_pageismanaged(paddr_t);
    354  1.98        ad bool uvm_page_owner_locked_p(struct vm_page *, bool);
    355  1.89        ad void uvm_pgfl_lock(void);
    356  1.89        ad void uvm_pgfl_unlock(void);
    357  1.96        ad unsigned int uvm_pagegetdirty(struct vm_page *);
    358  1.96        ad void uvm_pagemarkdirty(struct vm_page *, unsigned int);
    359  1.96        ad bool uvm_pagecheckdirty(struct vm_page *, bool);
    360  1.96        ad bool uvm_pagereadonly_p(struct vm_page *);
    361  1.96        ad bool uvm_page_locked_p(struct vm_page *);
    362   1.9   thorpej 
    363  1.43      yamt int uvm_page_lookup_freelist(struct vm_page *);
    364  1.16       mrg 
    365  1.65  uebayasi struct vm_page *uvm_phys_to_vm_page(paddr_t);
    366  1.65  uebayasi paddr_t uvm_vm_page_to_phys(const struct vm_page *);
    367  1.16       mrg 
    368  1.83  jdolecek #if defined(PMAP_DIRECT)
    369  1.84  jdolecek extern bool ubc_direct;
    370  1.83  jdolecek int uvm_direct_process(struct vm_page **, u_int, voff_t, vsize_t,
    371  1.83  jdolecek 	    int (*)(void *, size_t, void *), void *);
    372  1.83  jdolecek #endif
    373  1.83  jdolecek 
    374  1.16       mrg /*
    375  1.96        ad  * page dirtiness status for uvm_pagegetdirty and uvm_pagemarkdirty
    376  1.96        ad  *
    377  1.96        ad  * UNKNOWN means that we need to consult pmap to know if the page is
    378  1.96        ad  * dirty or not.
    379  1.96        ad  * basically, UVM_PAGE_STATUS_CLEAN implies that the page has no writable
    380  1.96        ad  * mapping.
    381  1.96        ad  *
    382  1.96        ad  * if you want to renumber these, check __CTASSERTs in
    383  1.96        ad  * uvm_page_status.c first.
    384  1.96        ad  */
    385  1.96        ad 
    386  1.96        ad #define	UVM_PAGE_STATUS_UNKNOWN	0
    387  1.96        ad #define	UVM_PAGE_STATUS_CLEAN	1
    388  1.96        ad #define	UVM_PAGE_STATUS_DIRTY	2
    389  1.96        ad #define	UVM_PAGE_NUM_STATUS	3
    390  1.96        ad 
    391  1.96        ad /*
    392  1.16       mrg  * macros
    393  1.16       mrg  */
    394  1.31       chs 
    395  1.65  uebayasi #define VM_PAGE_TO_PHYS(entry)	uvm_vm_page_to_phys(entry)
    396  1.20   thorpej 
    397  1.69  uebayasi #ifdef __HAVE_VM_PAGE_MD
    398  1.69  uebayasi #define	VM_PAGE_TO_MD(pg)	(&(pg)->mdpage)
    399  1.69  uebayasi #endif
    400  1.69  uebayasi 
    401  1.20   thorpej /*
    402  1.88        ad  * Compute the page color for a given page.
    403  1.20   thorpej  */
    404  1.88        ad #define	VM_PGCOLOR(pg) \
    405  1.24   thorpej 	(atop(VM_PAGE_TO_PHYS((pg))) & uvmexp.colormask)
    406  1.65  uebayasi #define	PHYS_TO_VM_PAGE(pa)	uvm_phys_to_vm_page(pa)
    407  1.89        ad 
    408  1.89        ad /*
    409  1.89        ad  * VM_PAGE_IS_FREE() can't tell if the page is on global free list, or a
    410  1.89        ad  * per-CPU cache.  If you need to be certain, pause caching.
    411  1.89        ad  */
    412  1.85        ad #define VM_PAGE_IS_FREE(entry)  ((entry)->flags & PG_FREE)
    413  1.35      yamt 
    414  1.88        ad /*
    415  1.88        ad  * Use the lower 10 bits of pg->phys_addr to cache some some locators for
    416  1.88        ad  * the page.  This implies that the smallest possible page size is 1kB, and
    417  1.88        ad  * that nobody should use pg->phys_addr directly (use VM_PAGE_TO_PHYS()).
    418  1.88        ad  *
    419  1.88        ad  * - 5 bits for the freelist index, because uvm_page_lookup_freelist()
    420  1.88        ad  *   traverses an rbtree and therefore features prominently in traces
    421  1.88        ad  *   captured during performance test.  It would probably be more useful to
    422  1.88        ad  *   cache physseg index here because freelist can be inferred from physseg,
    423  1.88        ad  *   but it requires changes to allocation for UVM_HOTPLUG, so for now we'll
    424  1.88        ad  *   go with freelist.
    425  1.88        ad  *
    426  1.88        ad  * - 5 bits for "bucket", a way for us to categorise pages further as
    427  1.88        ad  *   needed (e.g. NUMA node).
    428  1.88        ad  *
    429  1.88        ad  * None of this is set in stone; it can be adjusted as needed.
    430  1.88        ad  */
    431  1.94        ad 
    432  1.94        ad #define	UVM_PHYSADDR_FREELIST	__BITS(0,4)
    433  1.94        ad #define	UVM_PHYSADDR_BUCKET	__BITS(5,9)
    434  1.94        ad 
    435  1.88        ad static inline unsigned
    436  1.88        ad uvm_page_get_freelist(struct vm_page *pg)
    437  1.88        ad {
    438  1.94        ad 	unsigned fl = __SHIFTOUT(pg->phys_addr, UVM_PHYSADDR_FREELIST);
    439  1.88        ad 	KASSERT(fl == (unsigned)uvm_page_lookup_freelist(pg));
    440  1.88        ad 	return fl;
    441  1.88        ad }
    442  1.88        ad 
    443  1.88        ad static inline unsigned
    444  1.88        ad uvm_page_get_bucket(struct vm_page *pg)
    445  1.88        ad {
    446  1.94        ad 	return __SHIFTOUT(pg->phys_addr, UVM_PHYSADDR_BUCKET);
    447  1.88        ad }
    448  1.88        ad 
    449  1.88        ad static inline void
    450  1.88        ad uvm_page_set_freelist(struct vm_page *pg, unsigned fl)
    451  1.88        ad {
    452  1.88        ad 	KASSERT(fl < 32);
    453  1.94        ad 	pg->phys_addr &= ~UVM_PHYSADDR_FREELIST;
    454  1.94        ad 	pg->phys_addr |= __SHIFTIN(fl, UVM_PHYSADDR_FREELIST);
    455  1.88        ad }
    456  1.88        ad 
    457  1.88        ad static inline void
    458  1.88        ad uvm_page_set_bucket(struct vm_page *pg, unsigned b)
    459  1.88        ad {
    460  1.88        ad 	KASSERT(b < 32);
    461  1.94        ad 	pg->phys_addr &= ~UVM_PHYSADDR_BUCKET;
    462  1.94        ad 	pg->phys_addr |= __SHIFTIN(b, UVM_PHYSADDR_BUCKET);
    463  1.88        ad }
    464  1.88        ad 
    465  1.35      yamt #ifdef DEBUG
    466  1.35      yamt void uvm_pagezerocheck(struct vm_page *);
    467  1.35      yamt #endif /* DEBUG */
    468  1.13   thorpej 
    469  1.13   thorpej #endif /* _KERNEL */
    470   1.1       mrg 
    471   1.4     perry #endif /* _UVM_UVM_PAGE_H_ */
    472