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uvm_pdaemon.c revision 1.29.2.12
      1  1.29.2.12  nathanw /*	$NetBSD: uvm_pdaemon.c,v 1.29.2.12 2002/07/16 14:06:11 nathanw Exp $	*/
      2        1.1      mrg 
      3   1.29.2.2  nathanw /*
      4        1.1      mrg  * Copyright (c) 1997 Charles D. Cranor and Washington University.
      5   1.29.2.2  nathanw  * 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        1.1      mrg  * 3. All advertising materials mentioning features or use of this software
     21        1.1      mrg  *    must display the following acknowledgement:
     22        1.1      mrg  *	This product includes software developed by Charles D. Cranor,
     23   1.29.2.2  nathanw  *      Washington University, the University of California, Berkeley and
     24        1.1      mrg  *      its contributors.
     25        1.1      mrg  * 4. Neither the name of the University nor the names of its contributors
     26        1.1      mrg  *    may be used to endorse or promote products derived from this software
     27        1.1      mrg  *    without specific prior written permission.
     28        1.1      mrg  *
     29        1.1      mrg  * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
     30        1.1      mrg  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     31        1.1      mrg  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
     32        1.1      mrg  * ARE DISCLAIMED.  IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
     33        1.1      mrg  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
     34        1.1      mrg  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
     35        1.1      mrg  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
     36        1.1      mrg  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
     37        1.1      mrg  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
     38        1.1      mrg  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
     39        1.1      mrg  * SUCH DAMAGE.
     40        1.1      mrg  *
     41        1.1      mrg  *	@(#)vm_pageout.c        8.5 (Berkeley) 2/14/94
     42        1.4      mrg  * from: Id: uvm_pdaemon.c,v 1.1.2.32 1998/02/06 05:26:30 chs Exp
     43        1.1      mrg  *
     44        1.1      mrg  *
     45        1.1      mrg  * Copyright (c) 1987, 1990 Carnegie-Mellon University.
     46        1.1      mrg  * All rights reserved.
     47   1.29.2.2  nathanw  *
     48        1.1      mrg  * Permission to use, copy, modify and distribute this software and
     49        1.1      mrg  * its documentation is hereby granted, provided that both the copyright
     50        1.1      mrg  * notice and this permission notice appear in all copies of the
     51        1.1      mrg  * software, derivative works or modified versions, and any portions
     52        1.1      mrg  * thereof, and that both notices appear in supporting documentation.
     53   1.29.2.2  nathanw  *
     54   1.29.2.2  nathanw  * CARNEGIE MELLON ALLOWS FREE USE OF THIS SOFTWARE IN ITS "AS IS"
     55   1.29.2.2  nathanw  * CONDITION.  CARNEGIE MELLON DISCLAIMS ANY LIABILITY OF ANY KIND
     56        1.1      mrg  * FOR ANY DAMAGES WHATSOEVER RESULTING FROM THE USE OF THIS SOFTWARE.
     57   1.29.2.2  nathanw  *
     58        1.1      mrg  * Carnegie Mellon requests users of this software to return to
     59        1.1      mrg  *
     60        1.1      mrg  *  Software Distribution Coordinator  or  Software.Distribution (at) CS.CMU.EDU
     61        1.1      mrg  *  School of Computer Science
     62        1.1      mrg  *  Carnegie Mellon University
     63        1.1      mrg  *  Pittsburgh PA 15213-3890
     64        1.1      mrg  *
     65        1.1      mrg  * any improvements or extensions that they make and grant Carnegie the
     66        1.1      mrg  * rights to redistribute these changes.
     67        1.1      mrg  */
     68        1.1      mrg 
     69        1.1      mrg /*
     70        1.1      mrg  * uvm_pdaemon.c: the page daemon
     71        1.1      mrg  */
     72        1.1      mrg 
     73   1.29.2.7  nathanw #include <sys/cdefs.h>
     74  1.29.2.12  nathanw __KERNEL_RCSID(0, "$NetBSD: uvm_pdaemon.c,v 1.29.2.12 2002/07/16 14:06:11 nathanw Exp $");
     75   1.29.2.7  nathanw 
     76   1.29.2.7  nathanw #include "opt_uvmhist.h"
     77   1.29.2.7  nathanw 
     78        1.1      mrg #include <sys/param.h>
     79        1.1      mrg #include <sys/proc.h>
     80        1.1      mrg #include <sys/systm.h>
     81        1.1      mrg #include <sys/kernel.h>
     82        1.9       pk #include <sys/pool.h>
     83       1.24      chs #include <sys/buf.h>
     84   1.29.2.1  nathanw #include <sys/vnode.h>
     85        1.1      mrg 
     86        1.1      mrg #include <uvm/uvm.h>
     87        1.1      mrg 
     88        1.1      mrg /*
     89   1.29.2.9  nathanw  * UVMPD_NUMDIRTYREACTS is how many dirty pages the pagedaemon will reactivate
     90       1.14      chs  * in a pass thru the inactive list when swap is full.  the value should be
     91       1.14      chs  * "small"... if it's too large we'll cycle the active pages thru the inactive
     92       1.14      chs  * queue too quickly to for them to be referenced and avoid being freed.
     93       1.14      chs  */
     94       1.14      chs 
     95       1.14      chs #define UVMPD_NUMDIRTYREACTS 16
     96       1.14      chs 
     97       1.14      chs 
     98       1.14      chs /*
     99        1.1      mrg  * local prototypes
    100        1.1      mrg  */
    101        1.1      mrg 
    102   1.29.2.4  nathanw void		uvmpd_scan __P((void));
    103  1.29.2.10  nathanw void		uvmpd_scan_inactive __P((struct pglist *));
    104   1.29.2.4  nathanw void		uvmpd_tune __P((void));
    105        1.1      mrg 
    106        1.1      mrg /*
    107        1.1      mrg  * uvm_wait: wait (sleep) for the page daemon to free some pages
    108        1.1      mrg  *
    109        1.1      mrg  * => should be called with all locks released
    110        1.1      mrg  * => should _not_ be called by the page daemon (to avoid deadlock)
    111        1.1      mrg  */
    112        1.1      mrg 
    113       1.19  thorpej void
    114       1.19  thorpej uvm_wait(wmsg)
    115       1.19  thorpej 	const char *wmsg;
    116        1.8      mrg {
    117        1.8      mrg 	int timo = 0;
    118        1.8      mrg 	int s = splbio();
    119        1.1      mrg 
    120        1.8      mrg 	/*
    121        1.8      mrg 	 * check for page daemon going to sleep (waiting for itself)
    122        1.8      mrg 	 */
    123        1.1      mrg 
    124  1.29.2.12  nathanw 	if (curproc == uvm.pagedaemon_proc && uvmexp.paging == 0) {
    125        1.8      mrg 		/*
    126        1.8      mrg 		 * now we have a problem: the pagedaemon wants to go to
    127        1.8      mrg 		 * sleep until it frees more memory.   but how can it
    128        1.8      mrg 		 * free more memory if it is asleep?  that is a deadlock.
    129        1.8      mrg 		 * we have two options:
    130        1.8      mrg 		 *  [1] panic now
    131        1.8      mrg 		 *  [2] put a timeout on the sleep, thus causing the
    132        1.8      mrg 		 *      pagedaemon to only pause (rather than sleep forever)
    133        1.8      mrg 		 *
    134        1.8      mrg 		 * note that option [2] will only help us if we get lucky
    135        1.8      mrg 		 * and some other process on the system breaks the deadlock
    136        1.8      mrg 		 * by exiting or freeing memory (thus allowing the pagedaemon
    137        1.8      mrg 		 * to continue).  for now we panic if DEBUG is defined,
    138        1.8      mrg 		 * otherwise we hope for the best with option [2] (better
    139        1.8      mrg 		 * yet, this should never happen in the first place!).
    140        1.8      mrg 		 */
    141        1.1      mrg 
    142        1.8      mrg 		printf("pagedaemon: deadlock detected!\n");
    143        1.8      mrg 		timo = hz >> 3;		/* set timeout */
    144        1.1      mrg #if defined(DEBUG)
    145        1.8      mrg 		/* DEBUG: panic so we can debug it */
    146        1.8      mrg 		panic("pagedaemon deadlock");
    147        1.1      mrg #endif
    148        1.8      mrg 	}
    149        1.1      mrg 
    150        1.8      mrg 	simple_lock(&uvm.pagedaemon_lock);
    151       1.17  thorpej 	wakeup(&uvm.pagedaemon);		/* wake the daemon! */
    152        1.8      mrg 	UVM_UNLOCK_AND_WAIT(&uvmexp.free, &uvm.pagedaemon_lock, FALSE, wmsg,
    153        1.8      mrg 	    timo);
    154        1.1      mrg 
    155        1.8      mrg 	splx(s);
    156        1.1      mrg }
    157        1.1      mrg 
    158        1.1      mrg 
    159        1.1      mrg /*
    160        1.1      mrg  * uvmpd_tune: tune paging parameters
    161        1.1      mrg  *
    162        1.1      mrg  * => called when ever memory is added (or removed?) to the system
    163        1.1      mrg  * => caller must call with page queues locked
    164        1.1      mrg  */
    165        1.1      mrg 
    166   1.29.2.4  nathanw void
    167   1.29.2.4  nathanw uvmpd_tune(void)
    168        1.8      mrg {
    169        1.8      mrg 	UVMHIST_FUNC("uvmpd_tune"); UVMHIST_CALLED(pdhist);
    170        1.1      mrg 
    171        1.8      mrg 	uvmexp.freemin = uvmexp.npages / 20;
    172        1.1      mrg 
    173        1.8      mrg 	/* between 16k and 256k */
    174        1.8      mrg 	/* XXX:  what are these values good for? */
    175   1.29.2.4  nathanw 	uvmexp.freemin = MAX(uvmexp.freemin, (16*1024) >> PAGE_SHIFT);
    176   1.29.2.4  nathanw 	uvmexp.freemin = MIN(uvmexp.freemin, (256*1024) >> PAGE_SHIFT);
    177       1.23    bjh21 
    178       1.23    bjh21 	/* Make sure there's always a user page free. */
    179       1.23    bjh21 	if (uvmexp.freemin < uvmexp.reserve_kernel + 1)
    180       1.23    bjh21 		uvmexp.freemin = uvmexp.reserve_kernel + 1;
    181        1.1      mrg 
    182        1.8      mrg 	uvmexp.freetarg = (uvmexp.freemin * 4) / 3;
    183        1.8      mrg 	if (uvmexp.freetarg <= uvmexp.freemin)
    184        1.8      mrg 		uvmexp.freetarg = uvmexp.freemin + 1;
    185        1.1      mrg 
    186        1.8      mrg 	/* uvmexp.inactarg: computed in main daemon loop */
    187        1.1      mrg 
    188        1.8      mrg 	uvmexp.wiredmax = uvmexp.npages / 3;
    189        1.8      mrg 	UVMHIST_LOG(pdhist, "<- done, freemin=%d, freetarg=%d, wiredmax=%d",
    190        1.1      mrg 	      uvmexp.freemin, uvmexp.freetarg, uvmexp.wiredmax, 0);
    191        1.1      mrg }
    192        1.1      mrg 
    193        1.1      mrg /*
    194        1.1      mrg  * uvm_pageout: the main loop for the pagedaemon
    195        1.1      mrg  */
    196        1.1      mrg 
    197        1.8      mrg void
    198       1.22  thorpej uvm_pageout(void *arg)
    199        1.8      mrg {
    200        1.8      mrg 	int npages = 0;
    201        1.8      mrg 	UVMHIST_FUNC("uvm_pageout"); UVMHIST_CALLED(pdhist);
    202       1.24      chs 
    203        1.8      mrg 	UVMHIST_LOG(pdhist,"<starting uvm pagedaemon>", 0, 0, 0, 0);
    204        1.8      mrg 
    205        1.8      mrg 	/*
    206        1.8      mrg 	 * ensure correct priority and set paging parameters...
    207        1.8      mrg 	 */
    208        1.8      mrg 
    209  1.29.2.12  nathanw 	uvm.pagedaemon_proc = curproc;
    210        1.8      mrg 	uvm_lock_pageq();
    211        1.8      mrg 	npages = uvmexp.npages;
    212        1.8      mrg 	uvmpd_tune();
    213        1.8      mrg 	uvm_unlock_pageq();
    214        1.8      mrg 
    215        1.8      mrg 	/*
    216        1.8      mrg 	 * main loop
    217        1.8      mrg 	 */
    218       1.24      chs 
    219       1.24      chs 	for (;;) {
    220       1.24      chs 		simple_lock(&uvm.pagedaemon_lock);
    221       1.24      chs 
    222       1.24      chs 		UVMHIST_LOG(pdhist,"  <<SLEEPING>>",0,0,0,0);
    223       1.24      chs 		UVM_UNLOCK_AND_WAIT(&uvm.pagedaemon,
    224       1.24      chs 		    &uvm.pagedaemon_lock, FALSE, "pgdaemon", 0);
    225       1.24      chs 		uvmexp.pdwoke++;
    226       1.24      chs 		UVMHIST_LOG(pdhist,"  <<WOKE UP>>",0,0,0,0);
    227       1.24      chs 
    228        1.8      mrg 		/*
    229       1.24      chs 		 * now lock page queues and recompute inactive count
    230        1.8      mrg 		 */
    231        1.8      mrg 
    232       1.24      chs 		uvm_lock_pageq();
    233       1.24      chs 		if (npages != uvmexp.npages) {	/* check for new pages? */
    234       1.24      chs 			npages = uvmexp.npages;
    235       1.24      chs 			uvmpd_tune();
    236       1.24      chs 		}
    237       1.24      chs 
    238       1.24      chs 		uvmexp.inactarg = (uvmexp.active + uvmexp.inactive) / 3;
    239       1.24      chs 		if (uvmexp.inactarg <= uvmexp.freetarg) {
    240       1.24      chs 			uvmexp.inactarg = uvmexp.freetarg + 1;
    241       1.24      chs 		}
    242       1.24      chs 
    243       1.24      chs 		UVMHIST_LOG(pdhist,"  free/ftarg=%d/%d, inact/itarg=%d/%d",
    244       1.24      chs 		    uvmexp.free, uvmexp.freetarg, uvmexp.inactive,
    245       1.24      chs 		    uvmexp.inactarg);
    246        1.8      mrg 
    247        1.8      mrg 		/*
    248       1.24      chs 		 * scan if needed
    249        1.8      mrg 		 */
    250        1.8      mrg 
    251       1.24      chs 		if (uvmexp.free + uvmexp.paging < uvmexp.freetarg ||
    252   1.29.2.1  nathanw 		    uvmexp.inactive < uvmexp.inactarg) {
    253       1.24      chs 			uvmpd_scan();
    254        1.8      mrg 		}
    255        1.8      mrg 
    256        1.8      mrg 		/*
    257       1.24      chs 		 * if there's any free memory to be had,
    258       1.24      chs 		 * wake up any waiters.
    259        1.8      mrg 		 */
    260        1.8      mrg 
    261       1.24      chs 		if (uvmexp.free > uvmexp.reserve_kernel ||
    262       1.24      chs 		    uvmexp.paging == 0) {
    263       1.24      chs 			wakeup(&uvmexp.free);
    264        1.8      mrg 		}
    265        1.1      mrg 
    266        1.8      mrg 		/*
    267       1.24      chs 		 * scan done.  unlock page queues (the only lock we are holding)
    268        1.8      mrg 		 */
    269        1.8      mrg 
    270       1.24      chs 		uvm_unlock_pageq();
    271   1.29.2.5  nathanw 
    272   1.29.2.5  nathanw 		/*
    273   1.29.2.5  nathanw 		 * drain pool resources now that we're not holding any locks
    274   1.29.2.5  nathanw 		 */
    275   1.29.2.5  nathanw 
    276   1.29.2.5  nathanw 		pool_drain(0);
    277       1.24      chs 	}
    278       1.24      chs 	/*NOTREACHED*/
    279       1.24      chs }
    280       1.24      chs 
    281        1.8      mrg 
    282       1.24      chs /*
    283       1.24      chs  * uvm_aiodone_daemon:  main loop for the aiodone daemon.
    284       1.24      chs  */
    285        1.8      mrg 
    286       1.24      chs void
    287       1.24      chs uvm_aiodone_daemon(void *arg)
    288       1.24      chs {
    289       1.24      chs 	int s, free;
    290       1.24      chs 	struct buf *bp, *nbp;
    291       1.24      chs 	UVMHIST_FUNC("uvm_aiodoned"); UVMHIST_CALLED(pdhist);
    292        1.9       pk 
    293       1.24      chs 	for (;;) {
    294        1.8      mrg 
    295        1.8      mrg 		/*
    296       1.24      chs 		 * carefully attempt to go to sleep (without losing "wakeups"!).
    297       1.24      chs 		 * we need splbio because we want to make sure the aio_done list
    298       1.24      chs 		 * is totally empty before we go to sleep.
    299        1.8      mrg 		 */
    300        1.8      mrg 
    301       1.24      chs 		s = splbio();
    302       1.24      chs 		simple_lock(&uvm.aiodoned_lock);
    303       1.24      chs 		if (TAILQ_FIRST(&uvm.aio_done) == NULL) {
    304       1.24      chs 			UVMHIST_LOG(pdhist,"  <<SLEEPING>>",0,0,0,0);
    305       1.24      chs 			UVM_UNLOCK_AND_WAIT(&uvm.aiodoned,
    306       1.24      chs 			    &uvm.aiodoned_lock, FALSE, "aiodoned", 0);
    307       1.24      chs 			UVMHIST_LOG(pdhist,"  <<WOKE UP>>",0,0,0,0);
    308       1.24      chs 
    309       1.24      chs 			/* relock aiodoned_lock, still at splbio */
    310       1.24      chs 			simple_lock(&uvm.aiodoned_lock);
    311        1.8      mrg 		}
    312        1.8      mrg 
    313       1.24      chs 		/*
    314       1.24      chs 		 * check for done aio structures
    315       1.24      chs 		 */
    316        1.8      mrg 
    317       1.24      chs 		bp = TAILQ_FIRST(&uvm.aio_done);
    318       1.24      chs 		if (bp) {
    319       1.24      chs 			TAILQ_INIT(&uvm.aio_done);
    320       1.24      chs 		}
    321        1.8      mrg 
    322       1.24      chs 		simple_unlock(&uvm.aiodoned_lock);
    323       1.24      chs 		splx(s);
    324        1.8      mrg 
    325        1.8      mrg 		/*
    326       1.24      chs 		 * process each i/o that's done.
    327        1.8      mrg 		 */
    328        1.8      mrg 
    329       1.24      chs 		free = uvmexp.free;
    330       1.24      chs 		while (bp != NULL) {
    331       1.24      chs 			nbp = TAILQ_NEXT(bp, b_freelist);
    332       1.24      chs 			(*bp->b_iodone)(bp);
    333       1.24      chs 			bp = nbp;
    334       1.24      chs 		}
    335       1.24      chs 		if (free <= uvmexp.reserve_kernel) {
    336       1.24      chs 			s = uvm_lock_fpageq();
    337       1.24      chs 			wakeup(&uvm.pagedaemon);
    338       1.24      chs 			uvm_unlock_fpageq(s);
    339       1.24      chs 		} else {
    340       1.24      chs 			simple_lock(&uvm.pagedaemon_lock);
    341       1.17  thorpej 			wakeup(&uvmexp.free);
    342       1.24      chs 			simple_unlock(&uvm.pagedaemon_lock);
    343       1.24      chs 		}
    344        1.8      mrg 	}
    345        1.1      mrg }
    346        1.1      mrg 
    347        1.1      mrg /*
    348       1.24      chs  * uvmpd_scan_inactive: scan an inactive list for pages to clean or free.
    349        1.1      mrg  *
    350        1.1      mrg  * => called with page queues locked
    351        1.1      mrg  * => we work on meeting our free target by converting inactive pages
    352        1.1      mrg  *    into free pages.
    353        1.1      mrg  * => we handle the building of swap-backed clusters
    354        1.1      mrg  * => we return TRUE if we are exiting because we met our target
    355        1.1      mrg  */
    356        1.1      mrg 
    357  1.29.2.10  nathanw void
    358        1.8      mrg uvmpd_scan_inactive(pglst)
    359        1.8      mrg 	struct pglist *pglst;
    360        1.8      mrg {
    361   1.29.2.4  nathanw 	int error;
    362        1.8      mrg 	struct vm_page *p, *nextpg;
    363        1.8      mrg 	struct uvm_object *uobj;
    364        1.8      mrg 	struct vm_anon *anon;
    365   1.29.2.4  nathanw 	struct vm_page *swpps[MAXBSIZE >> PAGE_SHIFT];
    366   1.29.2.4  nathanw 	struct simplelock *slock;
    367   1.29.2.4  nathanw 	int swnpages, swcpages;
    368   1.29.2.4  nathanw 	int swslot;
    369   1.29.2.4  nathanw 	int dirtyreacts, t, result;
    370   1.29.2.8  nathanw 	boolean_t anonunder, fileunder, execunder;
    371   1.29.2.8  nathanw 	boolean_t anonover, fileover, execover;
    372   1.29.2.8  nathanw 	boolean_t anonreact, filereact, execreact;
    373        1.8      mrg 	UVMHIST_FUNC("uvmpd_scan_inactive"); UVMHIST_CALLED(pdhist);
    374        1.1      mrg 
    375        1.8      mrg 	/*
    376        1.8      mrg 	 * swslot is non-zero if we are building a swap cluster.  we want
    377       1.24      chs 	 * to stay in the loop while we have a page to scan or we have
    378        1.8      mrg 	 * a swap-cluster to build.
    379        1.8      mrg 	 */
    380       1.24      chs 
    381        1.8      mrg 	swslot = 0;
    382        1.8      mrg 	swnpages = swcpages = 0;
    383       1.14      chs 	dirtyreacts = 0;
    384   1.29.2.8  nathanw 
    385   1.29.2.8  nathanw 	/*
    386   1.29.2.8  nathanw 	 * decide which types of pages we want to reactivate instead of freeing
    387   1.29.2.8  nathanw 	 * to keep usage within the minimum and maximum usage limits.
    388   1.29.2.8  nathanw 	 */
    389   1.29.2.8  nathanw 
    390   1.29.2.8  nathanw 	t = uvmexp.active + uvmexp.inactive + uvmexp.free;
    391   1.29.2.8  nathanw 	anonunder = (uvmexp.anonpages <= (t * uvmexp.anonmin) >> 8);
    392   1.29.2.8  nathanw 	fileunder = (uvmexp.filepages <= (t * uvmexp.filemin) >> 8);
    393   1.29.2.8  nathanw 	execunder = (uvmexp.execpages <= (t * uvmexp.execmin) >> 8);
    394   1.29.2.8  nathanw 	anonover = uvmexp.anonpages > ((t * uvmexp.anonmax) >> 8);
    395   1.29.2.8  nathanw 	fileover = uvmexp.filepages > ((t * uvmexp.filemax) >> 8);
    396   1.29.2.8  nathanw 	execover = uvmexp.execpages > ((t * uvmexp.execmax) >> 8);
    397   1.29.2.8  nathanw 	anonreact = anonunder || (!anonover && (fileover || execover));
    398   1.29.2.8  nathanw 	filereact = fileunder || (!fileover && (anonover || execover));
    399   1.29.2.8  nathanw 	execreact = execunder || (!execover && (anonover || fileover));
    400       1.24      chs 	for (p = TAILQ_FIRST(pglst); p != NULL || swslot != 0; p = nextpg) {
    401       1.24      chs 		uobj = NULL;
    402       1.24      chs 		anon = NULL;
    403        1.8      mrg 		if (p) {
    404       1.24      chs 
    405        1.8      mrg 			/*
    406   1.29.2.4  nathanw 			 * see if we've met the free target.
    407        1.8      mrg 			 */
    408       1.24      chs 
    409   1.29.2.4  nathanw 			if (uvmexp.free + uvmexp.paging >=
    410   1.29.2.4  nathanw 			    uvmexp.freetarg << 2 ||
    411   1.29.2.1  nathanw 			    dirtyreacts == UVMPD_NUMDIRTYREACTS) {
    412   1.29.2.1  nathanw 				UVMHIST_LOG(pdhist,"  met free target: "
    413   1.29.2.1  nathanw 					    "exit loop", 0, 0, 0, 0);
    414   1.29.2.1  nathanw 
    415   1.29.2.1  nathanw 				if (swslot == 0) {
    416   1.29.2.1  nathanw 					/* exit now if no swap-i/o pending */
    417   1.29.2.1  nathanw 					break;
    418       1.24      chs 				}
    419   1.29.2.1  nathanw 
    420   1.29.2.1  nathanw 				/* set p to null to signal final swap i/o */
    421   1.29.2.1  nathanw 				p = NULL;
    422   1.29.2.4  nathanw 				nextpg = NULL;
    423        1.8      mrg 			}
    424        1.8      mrg 		}
    425       1.24      chs 		if (p) {	/* if (we have a new page to consider) */
    426   1.29.2.1  nathanw 
    427        1.8      mrg 			/*
    428        1.8      mrg 			 * we are below target and have a new page to consider.
    429        1.8      mrg 			 */
    430   1.29.2.4  nathanw 
    431        1.8      mrg 			uvmexp.pdscans++;
    432       1.24      chs 			nextpg = TAILQ_NEXT(p, pageq);
    433        1.8      mrg 
    434       1.27  mycroft 			/*
    435       1.27  mycroft 			 * move referenced pages back to active queue and
    436   1.29.2.1  nathanw 			 * skip to next page.
    437       1.27  mycroft 			 */
    438   1.29.2.1  nathanw 
    439   1.29.2.4  nathanw 			if (pmap_clear_reference(p)) {
    440       1.27  mycroft 				uvm_pageactivate(p);
    441       1.27  mycroft 				uvmexp.pdreact++;
    442       1.27  mycroft 				continue;
    443       1.27  mycroft 			}
    444   1.29.2.4  nathanw 			anon = p->uanon;
    445   1.29.2.4  nathanw 			uobj = p->uobject;
    446   1.29.2.1  nathanw 
    447   1.29.2.1  nathanw 			/*
    448   1.29.2.1  nathanw 			 * enforce the minimum thresholds on different
    449   1.29.2.1  nathanw 			 * types of memory usage.  if reusing the current
    450   1.29.2.1  nathanw 			 * page would reduce that type of usage below its
    451   1.29.2.1  nathanw 			 * minimum, reactivate the page instead and move
    452   1.29.2.1  nathanw 			 * on to the next page.
    453   1.29.2.1  nathanw 			 */
    454   1.29.2.1  nathanw 
    455   1.29.2.8  nathanw 			if (uobj && UVM_OBJ_IS_VTEXT(uobj) && execreact) {
    456   1.29.2.1  nathanw 				uvm_pageactivate(p);
    457   1.29.2.8  nathanw 				uvmexp.pdreexec++;
    458   1.29.2.1  nathanw 				continue;
    459   1.29.2.1  nathanw 			}
    460   1.29.2.8  nathanw 			if (uobj && UVM_OBJ_IS_VNODE(uobj) &&
    461   1.29.2.8  nathanw 			    !UVM_OBJ_IS_VTEXT(uobj) && filereact) {
    462   1.29.2.1  nathanw 				uvm_pageactivate(p);
    463   1.29.2.8  nathanw 				uvmexp.pdrefile++;
    464   1.29.2.1  nathanw 				continue;
    465   1.29.2.1  nathanw 			}
    466   1.29.2.8  nathanw 			if (anon && anonreact) {
    467   1.29.2.1  nathanw 				uvm_pageactivate(p);
    468   1.29.2.8  nathanw 				uvmexp.pdreanon++;
    469   1.29.2.1  nathanw 				continue;
    470   1.29.2.1  nathanw 			}
    471   1.29.2.1  nathanw 
    472        1.8      mrg 			/*
    473        1.8      mrg 			 * first we attempt to lock the object that this page
    474        1.8      mrg 			 * belongs to.  if our attempt fails we skip on to
    475        1.8      mrg 			 * the next page (no harm done).  it is important to
    476        1.8      mrg 			 * "try" locking the object as we are locking in the
    477        1.8      mrg 			 * wrong order (pageq -> object) and we don't want to
    478       1.24      chs 			 * deadlock.
    479        1.8      mrg 			 *
    480       1.24      chs 			 * the only time we expect to see an ownerless page
    481        1.8      mrg 			 * (i.e. a page with no uobject and !PQ_ANON) is if an
    482        1.8      mrg 			 * anon has loaned a page from a uvm_object and the
    483        1.8      mrg 			 * uvm_object has dropped the ownership.  in that
    484        1.8      mrg 			 * case, the anon can "take over" the loaned page
    485        1.8      mrg 			 * and make it its own.
    486        1.8      mrg 			 */
    487   1.29.2.1  nathanw 
    488   1.29.2.8  nathanw 			/* does the page belong to an object? */
    489   1.29.2.8  nathanw 			if (uobj != NULL) {
    490   1.29.2.8  nathanw 				slock = &uobj->vmobjlock;
    491   1.29.2.8  nathanw 				if (!simple_lock_try(slock)) {
    492   1.29.2.8  nathanw 					continue;
    493   1.29.2.8  nathanw 				}
    494   1.29.2.8  nathanw 				if (p->flags & PG_BUSY) {
    495   1.29.2.8  nathanw 					simple_unlock(slock);
    496   1.29.2.8  nathanw 					uvmexp.pdbusy++;
    497   1.29.2.8  nathanw 					continue;
    498   1.29.2.8  nathanw 				}
    499   1.29.2.8  nathanw 				uvmexp.pdobscan++;
    500   1.29.2.8  nathanw 			} else {
    501       1.24      chs 				KASSERT(anon != NULL);
    502   1.29.2.4  nathanw 				slock = &anon->an_lock;
    503   1.29.2.4  nathanw 				if (!simple_lock_try(slock)) {
    504        1.8      mrg 					continue;
    505   1.29.2.1  nathanw 				}
    506        1.8      mrg 
    507        1.8      mrg 				/*
    508   1.29.2.8  nathanw 				 * set PQ_ANON if it isn't set already.
    509        1.8      mrg 				 */
    510       1.24      chs 
    511        1.8      mrg 				if ((p->pqflags & PQ_ANON) == 0) {
    512       1.24      chs 					KASSERT(p->loan_count > 0);
    513        1.8      mrg 					p->loan_count--;
    514       1.24      chs 					p->pqflags |= PQ_ANON;
    515       1.24      chs 					/* anon now owns it */
    516        1.8      mrg 				}
    517        1.8      mrg 				if (p->flags & PG_BUSY) {
    518   1.29.2.4  nathanw 					simple_unlock(slock);
    519        1.8      mrg 					uvmexp.pdbusy++;
    520        1.8      mrg 					continue;
    521        1.8      mrg 				}
    522        1.8      mrg 				uvmexp.pdanscan++;
    523        1.8      mrg 			}
    524        1.8      mrg 
    525   1.29.2.4  nathanw 
    526        1.8      mrg 			/*
    527        1.8      mrg 			 * we now have the object and the page queues locked.
    528   1.29.2.4  nathanw 			 * if the page is not swap-backed, call the object's
    529   1.29.2.4  nathanw 			 * pager to flush and free the page.
    530   1.29.2.4  nathanw 			 */
    531   1.29.2.4  nathanw 
    532   1.29.2.4  nathanw 			if ((p->pqflags & PQ_SWAPBACKED) == 0) {
    533   1.29.2.4  nathanw 				uvm_unlock_pageq();
    534   1.29.2.4  nathanw 				error = (uobj->pgops->pgo_put)(uobj, p->offset,
    535   1.29.2.4  nathanw 				    p->offset + PAGE_SIZE,
    536   1.29.2.4  nathanw 				    PGO_CLEANIT|PGO_FREE);
    537   1.29.2.4  nathanw 				uvm_lock_pageq();
    538   1.29.2.4  nathanw 				if (nextpg &&
    539  1.29.2.10  nathanw 				    (nextpg->pqflags & PQ_INACTIVE) == 0) {
    540   1.29.2.4  nathanw 					nextpg = TAILQ_FIRST(pglst);
    541   1.29.2.4  nathanw 				}
    542   1.29.2.4  nathanw 				continue;
    543   1.29.2.4  nathanw 			}
    544   1.29.2.4  nathanw 
    545   1.29.2.4  nathanw 			/*
    546   1.29.2.4  nathanw 			 * the page is swap-backed.  remove all the permissions
    547       1.29  thorpej 			 * from the page so we can sync the modified info
    548       1.29  thorpej 			 * without any race conditions.  if the page is clean
    549       1.29  thorpej 			 * we can free it now and continue.
    550        1.8      mrg 			 */
    551        1.8      mrg 
    552       1.29  thorpej 			pmap_page_protect(p, VM_PROT_NONE);
    553   1.29.2.4  nathanw 			if ((p->flags & PG_CLEAN) && pmap_clear_modify(p)) {
    554   1.29.2.4  nathanw 				p->flags &= ~(PG_CLEAN);
    555   1.29.2.1  nathanw 			}
    556        1.8      mrg 			if (p->flags & PG_CLEAN) {
    557        1.8      mrg 				uvm_pagefree(p);
    558        1.8      mrg 				uvmexp.pdfreed++;
    559       1.24      chs 
    560   1.29.2.4  nathanw 				/*
    561   1.29.2.4  nathanw 				 * for anons, we need to remove the page
    562   1.29.2.4  nathanw 				 * from the anon ourselves.  for aobjs,
    563   1.29.2.4  nathanw 				 * pagefree did that for us.
    564   1.29.2.4  nathanw 				 */
    565       1.24      chs 
    566   1.29.2.4  nathanw 				if (anon) {
    567       1.24      chs 					KASSERT(anon->an_swslot != 0);
    568        1.8      mrg 					anon->u.an_page = NULL;
    569        1.8      mrg 				}
    570   1.29.2.4  nathanw 				simple_unlock(slock);
    571   1.29.2.7  nathanw 
    572   1.29.2.7  nathanw 				/* this page is now only in swap. */
    573   1.29.2.7  nathanw 				simple_lock(&uvm.swap_data_lock);
    574   1.29.2.7  nathanw 				KASSERT(uvmexp.swpgonly < uvmexp.swpginuse);
    575   1.29.2.7  nathanw 				uvmexp.swpgonly++;
    576   1.29.2.7  nathanw 				simple_unlock(&uvm.swap_data_lock);
    577        1.8      mrg 				continue;
    578        1.8      mrg 			}
    579        1.8      mrg 
    580        1.8      mrg 			/*
    581        1.8      mrg 			 * this page is dirty, skip it if we'll have met our
    582        1.8      mrg 			 * free target when all the current pageouts complete.
    583        1.8      mrg 			 */
    584       1.24      chs 
    585   1.29.2.4  nathanw 			if (uvmexp.free + uvmexp.paging >
    586   1.29.2.4  nathanw 			    uvmexp.freetarg << 2) {
    587   1.29.2.4  nathanw 				simple_unlock(slock);
    588        1.8      mrg 				continue;
    589        1.8      mrg 			}
    590        1.8      mrg 
    591        1.8      mrg 			/*
    592   1.29.2.4  nathanw 			 * free any swap space allocated to the page since
    593   1.29.2.4  nathanw 			 * we'll have to write it again with its new data.
    594   1.29.2.4  nathanw 			 */
    595   1.29.2.4  nathanw 
    596   1.29.2.4  nathanw 			if ((p->pqflags & PQ_ANON) && anon->an_swslot) {
    597   1.29.2.4  nathanw 				uvm_swap_free(anon->an_swslot, 1);
    598   1.29.2.4  nathanw 				anon->an_swslot = 0;
    599   1.29.2.4  nathanw 			} else if (p->pqflags & PQ_AOBJ) {
    600   1.29.2.4  nathanw 				uao_dropswap(uobj, p->offset >> PAGE_SHIFT);
    601   1.29.2.4  nathanw 			}
    602   1.29.2.4  nathanw 
    603   1.29.2.4  nathanw 			/*
    604   1.29.2.4  nathanw 			 * if all pages in swap are only in swap,
    605   1.29.2.4  nathanw 			 * the swap space is full and we can't page out
    606   1.29.2.4  nathanw 			 * any more swap-backed pages.  reactivate this page
    607   1.29.2.4  nathanw 			 * so that we eventually cycle all pages through
    608   1.29.2.4  nathanw 			 * the inactive queue.
    609       1.14      chs 			 */
    610       1.24      chs 
    611       1.24      chs 			KASSERT(uvmexp.swpgonly <= uvmexp.swpages);
    612   1.29.2.4  nathanw 			if (uvmexp.swpgonly == uvmexp.swpages) {
    613       1.14      chs 				dirtyreacts++;
    614       1.14      chs 				uvm_pageactivate(p);
    615   1.29.2.4  nathanw 				simple_unlock(slock);
    616       1.14      chs 				continue;
    617       1.14      chs 			}
    618       1.14      chs 
    619       1.14      chs 			/*
    620   1.29.2.4  nathanw 			 * start new swap pageout cluster (if necessary).
    621       1.14      chs 			 */
    622       1.24      chs 
    623   1.29.2.4  nathanw 			if (swslot == 0) {
    624   1.29.2.4  nathanw 				swnpages = MAXBSIZE >> PAGE_SHIFT;
    625   1.29.2.4  nathanw 				swslot = uvm_swap_alloc(&swnpages, TRUE);
    626   1.29.2.4  nathanw 				if (swslot == 0) {
    627   1.29.2.4  nathanw 					simple_unlock(slock);
    628   1.29.2.4  nathanw 					continue;
    629       1.14      chs 				}
    630   1.29.2.4  nathanw 				swcpages = 0;
    631       1.14      chs 			}
    632       1.14      chs 
    633       1.14      chs 			/*
    634   1.29.2.4  nathanw 			 * at this point, we're definitely going reuse this
    635   1.29.2.4  nathanw 			 * page.  mark the page busy and delayed-free.
    636   1.29.2.4  nathanw 			 * we should remove the page from the page queues
    637   1.29.2.4  nathanw 			 * so we don't ever look at it again.
    638   1.29.2.4  nathanw 			 * adjust counters and such.
    639        1.8      mrg 			 */
    640   1.29.2.1  nathanw 
    641   1.29.2.4  nathanw 			p->flags |= PG_BUSY;
    642        1.8      mrg 			UVM_PAGE_OWN(p, "scan_inactive");
    643   1.29.2.4  nathanw 
    644   1.29.2.4  nathanw 			p->flags |= PG_PAGEOUT;
    645   1.29.2.4  nathanw 			uvmexp.paging++;
    646   1.29.2.4  nathanw 			uvm_pagedequeue(p);
    647   1.29.2.4  nathanw 
    648        1.8      mrg 			uvmexp.pgswapout++;
    649        1.8      mrg 
    650        1.8      mrg 			/*
    651   1.29.2.4  nathanw 			 * add the new page to the cluster.
    652        1.8      mrg 			 */
    653       1.24      chs 
    654   1.29.2.4  nathanw 			if (anon) {
    655   1.29.2.4  nathanw 				anon->an_swslot = swslot + swcpages;
    656   1.29.2.4  nathanw 				simple_unlock(slock);
    657   1.29.2.4  nathanw 			} else {
    658   1.29.2.4  nathanw 				result = uao_set_swslot(uobj,
    659   1.29.2.4  nathanw 				    p->offset >> PAGE_SHIFT, swslot + swcpages);
    660   1.29.2.4  nathanw 				if (result == -1) {
    661   1.29.2.4  nathanw 					p->flags &= ~(PG_BUSY|PG_PAGEOUT);
    662   1.29.2.4  nathanw 					UVM_PAGE_OWN(p, NULL);
    663   1.29.2.4  nathanw 					uvmexp.paging--;
    664   1.29.2.4  nathanw 					uvm_pageactivate(p);
    665   1.29.2.4  nathanw 					simple_unlock(slock);
    666   1.29.2.4  nathanw 					continue;
    667        1.8      mrg 				}
    668   1.29.2.4  nathanw 				simple_unlock(slock);
    669   1.29.2.4  nathanw 			}
    670   1.29.2.4  nathanw 			swpps[swcpages] = p;
    671   1.29.2.4  nathanw 			swcpages++;
    672        1.8      mrg 
    673   1.29.2.4  nathanw 			/*
    674   1.29.2.4  nathanw 			 * if the cluster isn't full, look for more pages
    675   1.29.2.4  nathanw 			 * before starting the i/o.
    676   1.29.2.4  nathanw 			 */
    677       1.24      chs 
    678   1.29.2.4  nathanw 			if (swcpages < swnpages) {
    679   1.29.2.4  nathanw 				continue;
    680        1.8      mrg 			}
    681        1.8      mrg 		}
    682        1.8      mrg 
    683        1.8      mrg 		/*
    684   1.29.2.4  nathanw 		 * if this is the final pageout we could have a few
    685   1.29.2.4  nathanw 		 * unused swap blocks.  if so, free them now.
    686        1.8      mrg 		 */
    687       1.24      chs 
    688   1.29.2.4  nathanw 		if (swcpages < swnpages) {
    689   1.29.2.4  nathanw 			uvm_swap_free(swslot + swcpages, (swnpages - swcpages));
    690        1.8      mrg 		}
    691        1.8      mrg 
    692        1.8      mrg 		/*
    693   1.29.2.4  nathanw 		 * now start the pageout.
    694        1.8      mrg 		 */
    695        1.8      mrg 
    696   1.29.2.4  nathanw 		uvm_unlock_pageq();
    697        1.8      mrg 		uvmexp.pdpageouts++;
    698   1.29.2.4  nathanw 		error = uvm_swap_put(swslot, swpps, swcpages, 0);
    699   1.29.2.4  nathanw 		KASSERT(error == 0);
    700   1.29.2.4  nathanw 		uvm_lock_pageq();
    701        1.8      mrg 
    702        1.8      mrg 		/*
    703   1.29.2.4  nathanw 		 * zero swslot to indicate that we are
    704        1.8      mrg 		 * no longer building a swap-backed cluster.
    705        1.8      mrg 		 */
    706        1.8      mrg 
    707   1.29.2.4  nathanw 		swslot = 0;
    708       1.24      chs 
    709        1.8      mrg 		/*
    710   1.29.2.1  nathanw 		 * the pageout is in progress.  bump counters and set up
    711   1.29.2.1  nathanw 		 * for the next loop.
    712        1.8      mrg 		 */
    713        1.8      mrg 
    714   1.29.2.1  nathanw 		uvmexp.pdpending++;
    715   1.29.2.4  nathanw 		if (nextpg && (nextpg->pqflags & PQ_INACTIVE) == 0) {
    716   1.29.2.4  nathanw 			nextpg = TAILQ_FIRST(pglst);
    717        1.8      mrg 		}
    718       1.24      chs 	}
    719        1.1      mrg }
    720        1.1      mrg 
    721        1.1      mrg /*
    722        1.1      mrg  * uvmpd_scan: scan the page queues and attempt to meet our targets.
    723        1.1      mrg  *
    724        1.1      mrg  * => called with pageq's locked
    725        1.1      mrg  */
    726        1.1      mrg 
    727        1.8      mrg void
    728   1.29.2.4  nathanw uvmpd_scan(void)
    729        1.1      mrg {
    730   1.29.2.4  nathanw 	int inactive_shortage, swap_shortage, pages_freed;
    731        1.8      mrg 	struct vm_page *p, *nextpg;
    732        1.8      mrg 	struct uvm_object *uobj;
    733   1.29.2.4  nathanw 	struct vm_anon *anon;
    734   1.29.2.8  nathanw 	struct simplelock *slock;
    735        1.8      mrg 	UVMHIST_FUNC("uvmpd_scan"); UVMHIST_CALLED(pdhist);
    736        1.1      mrg 
    737   1.29.2.4  nathanw 	uvmexp.pdrevs++;
    738       1.24      chs 	uobj = NULL;
    739   1.29.2.4  nathanw 	anon = NULL;
    740        1.1      mrg 
    741        1.1      mrg #ifndef __SWAP_BROKEN
    742   1.29.2.6  nathanw 
    743        1.8      mrg 	/*
    744        1.8      mrg 	 * swap out some processes if we are below our free target.
    745        1.8      mrg 	 * we need to unlock the page queues for this.
    746        1.8      mrg 	 */
    747   1.29.2.6  nathanw 
    748   1.29.2.6  nathanw 	if (uvmexp.free < uvmexp.freetarg && uvmexp.nswapdev != 0) {
    749        1.8      mrg 		uvmexp.pdswout++;
    750   1.29.2.4  nathanw 		UVMHIST_LOG(pdhist,"  free %d < target %d: swapout",
    751   1.29.2.4  nathanw 		    uvmexp.free, uvmexp.freetarg, 0, 0);
    752        1.8      mrg 		uvm_unlock_pageq();
    753        1.8      mrg 		uvm_swapout_threads();
    754        1.8      mrg 		uvm_lock_pageq();
    755        1.1      mrg 
    756        1.8      mrg 	}
    757        1.1      mrg #endif
    758        1.1      mrg 
    759        1.8      mrg 	/*
    760        1.8      mrg 	 * now we want to work on meeting our targets.   first we work on our
    761        1.8      mrg 	 * free target by converting inactive pages into free pages.  then
    762        1.8      mrg 	 * we work on meeting our inactive target by converting active pages
    763        1.8      mrg 	 * to inactive ones.
    764        1.8      mrg 	 */
    765        1.8      mrg 
    766        1.8      mrg 	UVMHIST_LOG(pdhist, "  starting 'free' loop",0,0,0,0);
    767        1.8      mrg 
    768        1.8      mrg 	/*
    769       1.24      chs 	 * alternate starting queue between swap and object based on the
    770       1.24      chs 	 * low bit of uvmexp.pdrevs (which we bump by one each call).
    771        1.8      mrg 	 */
    772        1.8      mrg 
    773       1.14      chs 	pages_freed = uvmexp.pdfreed;
    774  1.29.2.10  nathanw 	uvmpd_scan_inactive(&uvm.page_inactive);
    775       1.14      chs 	pages_freed = uvmexp.pdfreed - pages_freed;
    776        1.8      mrg 
    777        1.8      mrg 	/*
    778        1.8      mrg 	 * we have done the scan to get free pages.   now we work on meeting
    779        1.8      mrg 	 * our inactive target.
    780        1.8      mrg 	 */
    781        1.8      mrg 
    782       1.14      chs 	inactive_shortage = uvmexp.inactarg - uvmexp.inactive;
    783       1.14      chs 
    784       1.14      chs 	/*
    785       1.14      chs 	 * detect if we're not going to be able to page anything out
    786       1.14      chs 	 * until we free some swap resources from active pages.
    787       1.14      chs 	 */
    788       1.24      chs 
    789       1.14      chs 	swap_shortage = 0;
    790       1.14      chs 	if (uvmexp.free < uvmexp.freetarg &&
    791       1.14      chs 	    uvmexp.swpginuse == uvmexp.swpages &&
    792       1.14      chs 	    uvmexp.swpgonly < uvmexp.swpages &&
    793       1.14      chs 	    pages_freed == 0) {
    794       1.14      chs 		swap_shortage = uvmexp.freetarg - uvmexp.free;
    795       1.14      chs 	}
    796       1.24      chs 
    797       1.14      chs 	UVMHIST_LOG(pdhist, "  loop 2: inactive_shortage=%d swap_shortage=%d",
    798       1.14      chs 		    inactive_shortage, swap_shortage,0,0);
    799       1.24      chs 	for (p = TAILQ_FIRST(&uvm.page_active);
    800       1.14      chs 	     p != NULL && (inactive_shortage > 0 || swap_shortage > 0);
    801       1.14      chs 	     p = nextpg) {
    802       1.24      chs 		nextpg = TAILQ_NEXT(p, pageq);
    803   1.29.2.4  nathanw 		if (p->flags & PG_BUSY) {
    804   1.29.2.4  nathanw 			continue;
    805   1.29.2.4  nathanw 		}
    806        1.8      mrg 
    807        1.8      mrg 		/*
    808       1.14      chs 		 * lock the page's owner.
    809        1.8      mrg 		 */
    810   1.29.2.8  nathanw 
    811   1.29.2.8  nathanw 		if (p->uobject != NULL) {
    812   1.29.2.8  nathanw 			uobj = p->uobject;
    813   1.29.2.8  nathanw 			slock = &uobj->vmobjlock;
    814   1.29.2.8  nathanw 			if (!simple_lock_try(slock)) {
    815   1.29.2.8  nathanw 				continue;
    816   1.29.2.8  nathanw 			}
    817   1.29.2.8  nathanw 		} else {
    818   1.29.2.4  nathanw 			anon = p->uanon;
    819   1.29.2.4  nathanw 			KASSERT(anon != NULL);
    820   1.29.2.8  nathanw 			slock = &anon->an_lock;
    821   1.29.2.8  nathanw 			if (!simple_lock_try(slock)) {
    822        1.8      mrg 				continue;
    823   1.29.2.4  nathanw 			}
    824        1.1      mrg 
    825        1.8      mrg 			/* take over the page? */
    826        1.8      mrg 			if ((p->pqflags & PQ_ANON) == 0) {
    827       1.24      chs 				KASSERT(p->loan_count > 0);
    828        1.8      mrg 				p->loan_count--;
    829        1.8      mrg 				p->pqflags |= PQ_ANON;
    830        1.8      mrg 			}
    831        1.8      mrg 		}
    832       1.24      chs 
    833       1.14      chs 		/*
    834       1.14      chs 		 * skip this page if it's busy.
    835       1.14      chs 		 */
    836       1.24      chs 
    837       1.14      chs 		if ((p->flags & PG_BUSY) != 0) {
    838   1.29.2.8  nathanw 			simple_unlock(slock);
    839       1.14      chs 			continue;
    840       1.14      chs 		}
    841       1.24      chs 
    842       1.14      chs 		/*
    843       1.14      chs 		 * if there's a shortage of swap, free any swap allocated
    844       1.14      chs 		 * to this page so that other pages can be paged out.
    845       1.14      chs 		 */
    846       1.24      chs 
    847       1.14      chs 		if (swap_shortage > 0) {
    848   1.29.2.4  nathanw 			if ((p->pqflags & PQ_ANON) && anon->an_swslot) {
    849   1.29.2.4  nathanw 				uvm_swap_free(anon->an_swslot, 1);
    850   1.29.2.4  nathanw 				anon->an_swslot = 0;
    851       1.14      chs 				p->flags &= ~PG_CLEAN;
    852       1.14      chs 				swap_shortage--;
    853   1.29.2.4  nathanw 			} else if (p->pqflags & PQ_AOBJ) {
    854   1.29.2.4  nathanw 				int slot = uao_set_swslot(uobj,
    855       1.14      chs 					p->offset >> PAGE_SHIFT, 0);
    856       1.14      chs 				if (slot) {
    857       1.14      chs 					uvm_swap_free(slot, 1);
    858       1.14      chs 					p->flags &= ~PG_CLEAN;
    859       1.14      chs 					swap_shortage--;
    860       1.14      chs 				}
    861       1.14      chs 			}
    862       1.14      chs 		}
    863       1.24      chs 
    864       1.14      chs 		/*
    865   1.29.2.4  nathanw 		 * if there's a shortage of inactive pages, deactivate.
    866       1.14      chs 		 */
    867       1.24      chs 
    868   1.29.2.2  nathanw 		if (inactive_shortage > 0) {
    869        1.8      mrg 			/* no need to check wire_count as pg is "active" */
    870        1.8      mrg 			uvm_pagedeactivate(p);
    871        1.8      mrg 			uvmexp.pddeact++;
    872       1.14      chs 			inactive_shortage--;
    873        1.8      mrg 		}
    874   1.29.2.4  nathanw 
    875   1.29.2.4  nathanw 		/*
    876   1.29.2.4  nathanw 		 * we're done with this page.
    877   1.29.2.4  nathanw 		 */
    878   1.29.2.4  nathanw 
    879   1.29.2.8  nathanw 		simple_unlock(slock);
    880        1.8      mrg 	}
    881        1.1      mrg }
    882